1 /*
2 * Copyright © 2008 Intel Corporation
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8 * and/or sell copies of the Software, and to permit persons to whom the
9 * Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice (including the next
12 * paragraph) shall be included in all copies or substantial portions of the
13 * Software.
14 *
15 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
18 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
20 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
21 * IN THE SOFTWARE.
22 *
23 * Authors:
24 * Keith Packard <keithp@keithp.com>
25 *
26 */
27
28 #include <linux/export.h>
29 #include <linux/i2c.h>
30 #include <linux/iopoll.h>
31 #include <linux/log2.h>
32 #include <linux/math.h>
33 #include <linux/notifier.h>
34 #include <linux/seq_buf.h>
35 #include <linux/slab.h>
36 #include <linux/string_helpers.h>
37 #include <linux/timekeeping.h>
38 #include <linux/types.h>
39 #include <asm/byteorder.h>
40
41 #include <drm/display/drm_dp_helper.h>
42 #include <drm/display/drm_dp_tunnel.h>
43 #include <drm/display/drm_dsc_helper.h>
44 #include <drm/display/drm_hdmi_helper.h>
45 #include <drm/drm_atomic_helper.h>
46 #include <drm/drm_crtc.h>
47 #include <drm/drm_edid.h>
48 #include <drm/drm_fixed.h>
49 #include <drm/drm_print.h>
50 #include <drm/drm_probe_helper.h>
51
52 #include "g4x_dp.h"
53 #include "intel_alpm.h"
54 #include "intel_atomic.h"
55 #include "intel_audio.h"
56 #include "intel_backlight.h"
57 #include "intel_combo_phy_regs.h"
58 #include "intel_connector.h"
59 #include "intel_crtc.h"
60 #include "intel_crtc_state_dump.h"
61 #include "intel_cx0_phy.h"
62 #include "intel_ddi.h"
63 #include "intel_de.h"
64 #include "intel_display_driver.h"
65 #include "intel_display_jiffies.h"
66 #include "intel_display_utils.h"
67 #include "intel_display_regs.h"
68 #include "intel_display_rpm.h"
69 #include "intel_display_types.h"
70 #include "intel_dp.h"
71 #include "intel_dp_aux.h"
72 #include "intel_dp_hdcp.h"
73 #include "intel_dp_link_caps.h"
74 #include "intel_dp_link_training.h"
75 #include "intel_dp_mst.h"
76 #include "intel_dp_test.h"
77 #include "intel_dp_tunnel.h"
78 #include "intel_dpio_phy.h"
79 #include "intel_dpll.h"
80 #include "intel_drrs.h"
81 #include "intel_encoder.h"
82 #include "intel_fifo_underrun.h"
83 #include "intel_hdcp.h"
84 #include "intel_hdmi.h"
85 #include "intel_hotplug.h"
86 #include "intel_hotplug_irq.h"
87 #include "intel_lspcon.h"
88 #include "intel_lvds.h"
89 #include "intel_modeset_lock.h"
90 #include "intel_panel.h"
91 #include "intel_pch_display.h"
92 #include "intel_pfit.h"
93 #include "intel_pps.h"
94 #include "intel_psr.h"
95 #include "intel_quirks.h"
96 #include "intel_tc.h"
97 #include "intel_vblank.h"
98 #include "intel_vdsc.h"
99 #include "intel_vrr.h"
100
101 /* Max DSC line buffer depth supported by HW. */
102 #define INTEL_DP_DSC_MAX_LINE_BUF_DEPTH 13
103
104 /* DP DSC FEC Overhead factor in ppm = 1/(0.972261) = 1.028530 */
105 #define DP_DSC_FEC_OVERHEAD_FACTOR 1028530
106
107 /* Constants for DP DSC configurations */
108 static const u8 valid_dsc_bpp[] = {6, 8, 10, 12, 15};
109
110 /**
111 * intel_dp_is_edp - is the given port attached to an eDP panel (either CPU or PCH)
112 * @intel_dp: DP struct
113 *
114 * If a CPU or PCH DP output is attached to an eDP panel, this function
115 * will return true, and false otherwise.
116 *
117 * This function is not safe to use prior to encoder type being set.
118 */
intel_dp_is_edp(struct intel_dp * intel_dp)119 bool intel_dp_is_edp(struct intel_dp *intel_dp)
120 {
121 struct intel_digital_port *dig_port = dp_to_dig_port(intel_dp);
122
123 return dig_port->base.type == INTEL_OUTPUT_EDP;
124 }
125
126 static void intel_dp_unset_edid(struct intel_dp *intel_dp);
127
128 /* Is link rate UHBR and thus 128b/132b? */
intel_dp_is_uhbr(const struct intel_crtc_state * crtc_state)129 bool intel_dp_is_uhbr(const struct intel_crtc_state *crtc_state)
130 {
131 return drm_dp_is_uhbr_rate(crtc_state->port_clock);
132 }
133
134 /**
135 * intel_dp_link_symbol_size - get the link symbol size for a given link rate
136 * @rate: link rate in 10kbit/s units
137 *
138 * Returns the link symbol size in bits/symbol units depending on the link
139 * rate -> channel coding.
140 */
intel_dp_link_symbol_size(int rate)141 int intel_dp_link_symbol_size(int rate)
142 {
143 return drm_dp_is_uhbr_rate(rate) ? 32 : 10;
144 }
145
146 /**
147 * intel_dp_link_symbol_clock - convert link rate to link symbol clock
148 * @rate: link rate in 10kbit/s units
149 *
150 * Returns the link symbol clock frequency in kHz units depending on the
151 * link rate and channel coding.
152 */
intel_dp_link_symbol_clock(int rate)153 int intel_dp_link_symbol_clock(int rate)
154 {
155 return DIV_ROUND_CLOSEST(rate * 10, intel_dp_link_symbol_size(rate));
156 }
157
max_dprx_rate(struct intel_dp * intel_dp)158 static int max_dprx_rate(struct intel_dp *intel_dp)
159 {
160 struct intel_display *display = to_intel_display(intel_dp);
161 int max_rate;
162
163 if (intel_dp_tunnel_bw_alloc_is_enabled(intel_dp))
164 max_rate = drm_dp_tunnel_max_dprx_rate(intel_dp->tunnel);
165 else
166 max_rate = drm_dp_bw_code_to_link_rate(intel_dp->dpcd[DP_MAX_LINK_RATE]);
167
168 /*
169 * Some platforms + eDP panels may not reliably support HBR3
170 * due to signal integrity limitations, despite advertising it.
171 * Cap the link rate to HBR2 to avoid unstable configurations for the
172 * known machines.
173 */
174 if (intel_dp_is_edp(intel_dp) && intel_has_quirk(display, QUIRK_EDP_LIMIT_RATE_HBR2))
175 max_rate = min(max_rate, 540000);
176
177 return max_rate;
178 }
179
max_dprx_lane_count(struct intel_dp * intel_dp)180 static int max_dprx_lane_count(struct intel_dp *intel_dp)
181 {
182 if (intel_dp_tunnel_bw_alloc_is_enabled(intel_dp))
183 return drm_dp_tunnel_max_dprx_lane_count(intel_dp->tunnel);
184
185 return drm_dp_max_lane_count(intel_dp->dpcd);
186 }
187
intel_dp_set_default_sink_rates(struct intel_dp * intel_dp)188 static void intel_dp_set_default_sink_rates(struct intel_dp *intel_dp)
189 {
190 intel_dp->sink_rates[0] = 162000;
191 intel_dp->num_sink_rates = 1;
192 }
193
dprx_supports_128b132b(struct intel_dp * intel_dp)194 static bool dprx_supports_128b132b(struct intel_dp *intel_dp)
195 {
196 if (intel_dp_tunnel_bw_alloc_is_enabled(intel_dp))
197 return drm_dp_tunnel_128b132b_supported(intel_dp->tunnel);
198 else
199 return drm_dp_128b132b_supported(intel_dp->dpcd);
200 }
201
dprx_128b132b_link_rates(struct intel_dp * intel_dp,u8 no_bwa_rates)202 static u8 dprx_128b132b_link_rates(struct intel_dp *intel_dp, u8 no_bwa_rates)
203 {
204 u8 ret;
205
206 if (!intel_dp_tunnel_bw_alloc_is_enabled(intel_dp))
207 return no_bwa_rates;
208
209 ret = drm_dp_tunnel_128b132b_dprx_rates(intel_dp->tunnel);
210 static_assert(DP_TUNNELING_10GBPS_PER_LANE_SUPPORT == DP_UHBR10 &&
211 DP_TUNNELING_13_5GBPS_PER_LANE_SUPPORT == DP_UHBR13_5 &&
212 DP_TUNNELING_20GBPS_PER_LANE_SUPPORT == DP_UHBR20);
213
214 return ret;
215 }
216
217 /* update sink rates from dpcd */
intel_dp_set_dpcd_sink_rates(struct intel_dp * intel_dp)218 static void intel_dp_set_dpcd_sink_rates(struct intel_dp *intel_dp)
219 {
220 static const int dp_rates[] = {
221 162000, 270000, 540000, 810000
222 };
223 int i, max_rate;
224 int max_lttpr_rate;
225 u8 uhbr_rates = 0;
226
227 if (drm_dp_has_quirk(&intel_dp->desc, DP_DPCD_QUIRK_CAN_DO_MAX_LINK_RATE_3_24_GBPS)) {
228 /* Needed, e.g., for Apple MBP 2017, 15 inch eDP Retina panel */
229 static const int quirk_rates[] = { 162000, 270000, 324000 };
230
231 memcpy(intel_dp->sink_rates, quirk_rates, sizeof(quirk_rates));
232 intel_dp->num_sink_rates = ARRAY_SIZE(quirk_rates);
233
234 return;
235 }
236
237 /*
238 * Sink rates for 8b/10b.
239 */
240 max_rate = max_dprx_rate(intel_dp);
241 max_lttpr_rate = drm_dp_lttpr_max_link_rate(intel_dp->lttpr_common_caps);
242 if (max_lttpr_rate)
243 max_rate = min(max_rate, max_lttpr_rate);
244
245 for (i = 0; i < ARRAY_SIZE(dp_rates); i++) {
246 if (dp_rates[i] > max_rate)
247 break;
248 intel_dp->sink_rates[i] = dp_rates[i];
249 }
250
251 /*
252 * The following register must be read unconditionally for the later
253 * DP tunnel 128b132b detection to work, see DP Standard v2.1 5.14.3 .
254 */
255 drm_dp_dpcd_read_byte(&intel_dp->aux, DP_128B132B_SUPPORTED_LINK_RATES, &uhbr_rates);
256
257 /*
258 * Sink rates for 128b/132b. If set, sink should support all 8b/10b
259 * rates and 10 Gbps.
260 */
261 if (dprx_supports_128b132b(intel_dp)) {
262 BUILD_BUG_ON(ARRAY_SIZE(intel_dp->sink_rates) < ARRAY_SIZE(dp_rates) + 3);
263
264 uhbr_rates = dprx_128b132b_link_rates(intel_dp, uhbr_rates);
265
266 if (drm_dp_lttpr_count(intel_dp->lttpr_common_caps)) {
267 /* We have a repeater */
268 if (intel_dp->lttpr_common_caps[0] >= 0x20 &&
269 intel_dp->lttpr_common_caps[DP_MAIN_LINK_CHANNEL_CODING_PHY_REPEATER -
270 DP_LT_TUNABLE_PHY_REPEATER_FIELD_DATA_STRUCTURE_REV] &
271 DP_PHY_REPEATER_128B132B_SUPPORTED) {
272 /* Repeater supports 128b/132b, valid UHBR rates */
273 uhbr_rates &= intel_dp->lttpr_common_caps[DP_PHY_REPEATER_128B132B_RATES -
274 DP_LT_TUNABLE_PHY_REPEATER_FIELD_DATA_STRUCTURE_REV];
275 } else {
276 /* Does not support 128b/132b */
277 uhbr_rates = 0;
278 }
279 }
280
281 if (uhbr_rates & DP_UHBR10)
282 intel_dp->sink_rates[i++] = 1000000;
283 if (uhbr_rates & DP_UHBR13_5)
284 intel_dp->sink_rates[i++] = 1350000;
285 if (uhbr_rates & DP_UHBR20)
286 intel_dp->sink_rates[i++] = 2000000;
287 }
288
289 intel_dp->num_sink_rates = i;
290 }
291
intel_dp_set_sink_rates(struct intel_dp * intel_dp)292 static void intel_dp_set_sink_rates(struct intel_dp *intel_dp)
293 {
294 struct intel_display *display = to_intel_display(intel_dp);
295 struct intel_connector *connector = intel_dp->attached_connector;
296 struct intel_digital_port *intel_dig_port = dp_to_dig_port(intel_dp);
297 struct intel_encoder *encoder = &intel_dig_port->base;
298
299 intel_dp_set_dpcd_sink_rates(intel_dp);
300
301 if (intel_dp->num_sink_rates)
302 return;
303
304 drm_err(display->drm,
305 "[CONNECTOR:%d:%s][ENCODER:%d:%s] Invalid DPCD with no link rates, using defaults\n",
306 connector->base.base.id, connector->base.name,
307 encoder->base.base.id, encoder->base.name);
308
309 intel_dp_set_default_sink_rates(intel_dp);
310 }
311
intel_dp_set_default_max_sink_lane_count(struct intel_dp * intel_dp)312 static void intel_dp_set_default_max_sink_lane_count(struct intel_dp *intel_dp)
313 {
314 intel_dp->max_sink_lane_count = 1;
315 }
316
intel_dp_set_max_sink_lane_count(struct intel_dp * intel_dp)317 static void intel_dp_set_max_sink_lane_count(struct intel_dp *intel_dp)
318 {
319 struct intel_display *display = to_intel_display(intel_dp);
320 struct intel_connector *connector = intel_dp->attached_connector;
321 struct intel_digital_port *intel_dig_port = dp_to_dig_port(intel_dp);
322 struct intel_encoder *encoder = &intel_dig_port->base;
323
324 intel_dp->max_sink_lane_count = max_dprx_lane_count(intel_dp);
325
326 switch (intel_dp->max_sink_lane_count) {
327 case 1:
328 case 2:
329 case 4:
330 return;
331 }
332
333 drm_err(display->drm,
334 "[CONNECTOR:%d:%s][ENCODER:%d:%s] Invalid DPCD max lane count (%d), using default\n",
335 connector->base.base.id, connector->base.name,
336 encoder->base.base.id, encoder->base.name,
337 intel_dp->max_sink_lane_count);
338
339 intel_dp_set_default_max_sink_lane_count(intel_dp);
340 }
341
342 /* Get length of rates array potentially limited by max_rate. */
intel_dp_rate_limit_len(const int * rates,int len,int max_rate)343 int intel_dp_rate_limit_len(const int *rates, int len, int max_rate)
344 {
345 int i;
346
347 /* Limit results by potentially reduced max rate */
348 for (i = 0; i < len; i++) {
349 if (rates[len - i - 1] <= max_rate)
350 return len - i;
351 }
352
353 return 0;
354 }
355
intel_dp_max_source_lane_count(struct intel_digital_port * dig_port)356 int intel_dp_max_source_lane_count(struct intel_digital_port *dig_port)
357 {
358 int vbt_max_lanes = intel_bios_dp_max_lane_count(dig_port->base.devdata);
359 int max_lanes = dig_port->max_lanes;
360
361 if (vbt_max_lanes)
362 max_lanes = min(max_lanes, vbt_max_lanes);
363
364 return max_lanes;
365 }
366
367 /*
368 * Theoretical max between source and sink.
369 */
intel_dp_get_max_common_lane_count(struct intel_dp * intel_dp)370 static int intel_dp_get_max_common_lane_count(struct intel_dp *intel_dp)
371 {
372 struct intel_digital_port *dig_port = dp_to_dig_port(intel_dp);
373 int source_max = intel_dp_max_source_lane_count(dig_port);
374 int sink_max = intel_dp->max_sink_lane_count;
375 int lane_max = intel_tc_port_max_lane_count(dig_port);
376 int lttpr_max = drm_dp_lttpr_max_lane_count(intel_dp->lttpr_common_caps);
377
378 if (lttpr_max)
379 sink_max = min(sink_max, lttpr_max);
380
381 return min3(source_max, sink_max, lane_max);
382 }
383
intel_dp_link_bw_overhead(int link_clock,int lane_count,int hdisplay,int dsc_slice_count,int bpp_x16,unsigned long flags)384 int intel_dp_link_bw_overhead(int link_clock, int lane_count, int hdisplay,
385 int dsc_slice_count, int bpp_x16, unsigned long flags)
386 {
387 int overhead;
388
389 WARN_ON(flags & ~(DRM_DP_BW_OVERHEAD_MST | DRM_DP_BW_OVERHEAD_SSC_REF_CLK |
390 DRM_DP_BW_OVERHEAD_FEC));
391
392 if (drm_dp_is_uhbr_rate(link_clock))
393 flags |= DRM_DP_BW_OVERHEAD_UHBR;
394
395 if (dsc_slice_count)
396 flags |= DRM_DP_BW_OVERHEAD_DSC;
397
398 overhead = drm_dp_bw_overhead(lane_count, hdisplay,
399 dsc_slice_count,
400 bpp_x16,
401 flags);
402
403 /*
404 * TODO: clarify whether a minimum required by the fixed FEC overhead
405 * in the bspec audio programming sequence is required here.
406 */
407 return max(overhead, intel_dp_bw_fec_overhead(flags & DRM_DP_BW_OVERHEAD_FEC));
408 }
409
410 /*
411 * The required data bandwidth for a mode with given pixel clock and bpp. This
412 * is the required net bandwidth independent of the data bandwidth efficiency.
413 */
intel_dp_link_required(int link_clock,int lane_count,int mode_clock,int mode_hdisplay,int link_bpp_x16,unsigned long bw_overhead_flags)414 int intel_dp_link_required(int link_clock, int lane_count,
415 int mode_clock, int mode_hdisplay,
416 int link_bpp_x16, unsigned long bw_overhead_flags)
417 {
418 int bw_overhead = intel_dp_link_bw_overhead(link_clock, lane_count, mode_hdisplay,
419 0, link_bpp_x16, bw_overhead_flags);
420
421 return intel_dp_effective_data_rate(mode_clock, link_bpp_x16, bw_overhead);
422 }
423
424 /**
425 * intel_dp_effective_data_rate - Return the pixel data rate accounting for BW allocation overhead
426 * @pixel_clock: pixel clock in kHz
427 * @bpp_x16: bits per pixel .4 fixed point format
428 * @bw_overhead: BW allocation overhead in 1ppm units
429 *
430 * Return the effective pixel data rate in kB/sec units taking into account
431 * the provided SSC, FEC, DSC BW allocation overhead.
432 */
intel_dp_effective_data_rate(int pixel_clock,int bpp_x16,int bw_overhead)433 int intel_dp_effective_data_rate(int pixel_clock, int bpp_x16,
434 int bw_overhead)
435 {
436 return DIV_ROUND_UP_ULL(mul_u32_u32(pixel_clock * bpp_x16, bw_overhead),
437 1000000 * 16 * 8);
438 }
439
440 /**
441 * intel_dp_max_link_data_rate: Calculate the maximum rate for the given link params
442 * @intel_dp: Intel DP object
443 * @max_dprx_rate: Maximum data rate of the DPRX
444 * @max_dprx_lanes: Maximum lane count of the DPRX
445 *
446 * Calculate the maximum data rate for the provided link parameters taking into
447 * account any BW limitations by a DP tunnel attached to @intel_dp.
448 *
449 * Returns the maximum data rate in kBps units.
450 */
intel_dp_max_link_data_rate(struct intel_dp * intel_dp,int max_dprx_rate,int max_dprx_lanes)451 int intel_dp_max_link_data_rate(struct intel_dp *intel_dp,
452 int max_dprx_rate, int max_dprx_lanes)
453 {
454 int max_rate = drm_dp_max_dprx_data_rate(max_dprx_rate, max_dprx_lanes);
455
456 if (intel_dp_tunnel_bw_alloc_is_enabled(intel_dp))
457 max_rate = min(max_rate,
458 drm_dp_tunnel_available_bw(intel_dp->tunnel));
459
460 return max_rate;
461 }
462
intel_dp_has_joiner(struct intel_dp * intel_dp)463 bool intel_dp_has_joiner(struct intel_dp *intel_dp)
464 {
465 struct intel_display *display = to_intel_display(intel_dp);
466 struct intel_digital_port *intel_dig_port = dp_to_dig_port(intel_dp);
467 struct intel_encoder *encoder = &intel_dig_port->base;
468 struct intel_connector *connector = intel_dp->attached_connector;
469
470 /* eDP MSO is not compatible with joiner */
471 if (intel_dp->mso_link_count)
472 return false;
473
474 if (intel_dp_is_edp(intel_dp) &&
475 !connector->panel.vbt.edp.pipe_joiner_enable)
476 return false;
477
478 return DISPLAY_VER(display) >= 12 ||
479 (DISPLAY_VER(display) == 11 &&
480 encoder->port != PORT_A);
481 }
482
dg2_max_source_rate(struct intel_dp * intel_dp)483 static int dg2_max_source_rate(struct intel_dp *intel_dp)
484 {
485 return intel_dp_is_edp(intel_dp) ? 810000 : 1350000;
486 }
487
icl_max_source_rate(struct intel_dp * intel_dp)488 static int icl_max_source_rate(struct intel_dp *intel_dp)
489 {
490 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
491
492 if (intel_encoder_is_combo(encoder) && !intel_dp_is_edp(intel_dp))
493 return 540000;
494
495 return 810000;
496 }
497
ehl_max_source_rate(struct intel_dp * intel_dp)498 static int ehl_max_source_rate(struct intel_dp *intel_dp)
499 {
500 if (intel_dp_is_edp(intel_dp))
501 return 540000;
502
503 return 810000;
504 }
505
mtl_max_source_rate(struct intel_dp * intel_dp)506 static int mtl_max_source_rate(struct intel_dp *intel_dp)
507 {
508 struct intel_display *display = to_intel_display(intel_dp);
509 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
510
511 if (intel_encoder_is_c10phy(encoder) ||
512 display->platform.pantherlake_wildcatlake)
513 return 810000;
514
515 if (DISPLAY_VERx100(display) == 1401)
516 return 1350000;
517
518 return 2000000;
519 }
520
vbt_max_link_rate(struct intel_dp * intel_dp)521 static int vbt_max_link_rate(struct intel_dp *intel_dp)
522 {
523 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
524 int max_rate;
525
526 max_rate = intel_bios_dp_max_link_rate(encoder->devdata);
527
528 if (intel_dp_is_edp(intel_dp)) {
529 struct intel_connector *connector = intel_dp->attached_connector;
530 int edp_max_rate = connector->panel.vbt.edp.max_link_rate;
531
532 if (max_rate && edp_max_rate)
533 max_rate = min(max_rate, edp_max_rate);
534 else if (edp_max_rate)
535 max_rate = edp_max_rate;
536 }
537
538 return max_rate;
539 }
540
541 static void
intel_dp_set_source_rates(struct intel_dp * intel_dp)542 intel_dp_set_source_rates(struct intel_dp *intel_dp)
543 {
544 /* The values must be in increasing order */
545 static const int bmg_rates[] = {
546 162000, 216000, 243000, 270000, 324000, 432000, 540000, 675000,
547 810000, 1000000, 1350000,
548 };
549 static const int mtl_rates[] = {
550 162000, 216000, 243000, 270000, 324000, 432000, 540000, 675000,
551 810000, 1000000, 2000000,
552 };
553 static const int icl_rates[] = {
554 162000, 216000, 270000, 324000, 432000, 540000, 648000, 810000,
555 1000000, 1350000,
556 };
557 static const int bxt_rates[] = {
558 162000, 216000, 243000, 270000, 324000, 432000, 540000
559 };
560 static const int skl_rates[] = {
561 162000, 216000, 270000, 324000, 432000, 540000
562 };
563 static const int hsw_rates[] = {
564 162000, 270000, 540000
565 };
566 static const int g4x_rates[] = {
567 162000, 270000
568 };
569 struct intel_display *display = to_intel_display(intel_dp);
570 const int *source_rates;
571 int size, max_rate = 0, vbt_max_rate;
572
573 /* This should only be done once */
574 drm_WARN_ON(display->drm,
575 intel_dp->source_rates || intel_dp->num_source_rates);
576
577 if (DISPLAY_VER(display) >= 14) {
578 if (display->platform.battlemage) {
579 source_rates = bmg_rates;
580 size = ARRAY_SIZE(bmg_rates);
581 } else {
582 source_rates = mtl_rates;
583 size = ARRAY_SIZE(mtl_rates);
584 }
585 max_rate = mtl_max_source_rate(intel_dp);
586 } else if (DISPLAY_VER(display) >= 11) {
587 source_rates = icl_rates;
588 size = ARRAY_SIZE(icl_rates);
589 if (display->platform.dg2)
590 max_rate = dg2_max_source_rate(intel_dp);
591 else if (display->platform.alderlake_p || display->platform.alderlake_s ||
592 display->platform.dg1 || display->platform.rocketlake)
593 max_rate = 810000;
594 else if (display->platform.jasperlake || display->platform.elkhartlake)
595 max_rate = ehl_max_source_rate(intel_dp);
596 else
597 max_rate = icl_max_source_rate(intel_dp);
598 } else if (display->platform.geminilake || display->platform.broxton) {
599 source_rates = bxt_rates;
600 size = ARRAY_SIZE(bxt_rates);
601 } else if (DISPLAY_VER(display) == 9) {
602 source_rates = skl_rates;
603 size = ARRAY_SIZE(skl_rates);
604 } else if ((display->platform.haswell && !display->platform.haswell_ulx) ||
605 display->platform.broadwell) {
606 source_rates = hsw_rates;
607 size = ARRAY_SIZE(hsw_rates);
608 } else {
609 source_rates = g4x_rates;
610 size = ARRAY_SIZE(g4x_rates);
611 }
612
613 vbt_max_rate = vbt_max_link_rate(intel_dp);
614 if (max_rate && vbt_max_rate)
615 max_rate = min(max_rate, vbt_max_rate);
616 else if (vbt_max_rate)
617 max_rate = vbt_max_rate;
618
619 if (max_rate)
620 size = intel_dp_rate_limit_len(source_rates, size, max_rate);
621
622 intel_dp->source_rates = source_rates;
623 intel_dp->num_source_rates = size;
624 }
625
intersect_rates(const int * source_rates,int source_len,const int * sink_rates,int sink_len,int * common_rates)626 static int intersect_rates(const int *source_rates, int source_len,
627 const int *sink_rates, int sink_len,
628 int *common_rates)
629 {
630 int i = 0, j = 0, k = 0;
631
632 while (i < source_len && j < sink_len) {
633 if (source_rates[i] == sink_rates[j]) {
634 if (WARN_ON(k >= DP_MAX_SUPPORTED_RATES))
635 return k;
636 common_rates[k] = source_rates[i];
637 ++k;
638 ++i;
639 ++j;
640 } else if (source_rates[i] < sink_rates[j]) {
641 ++i;
642 } else {
643 ++j;
644 }
645 }
646 return k;
647 }
648
649 /* return index of rate in rates array, or -1 if not found */
intel_dp_rate_index(const int * rates,int len,int rate)650 int intel_dp_rate_index(const int *rates, int len, int rate)
651 {
652 int i;
653
654 for (i = 0; i < len; i++)
655 if (rate == rates[i])
656 return i;
657
658 return -1;
659 }
660
intel_dp_get_common_rates(struct intel_dp * intel_dp,int common_rates[DP_MAX_SUPPORTED_RATES],int * num_common_rates)661 static void intel_dp_get_common_rates(struct intel_dp *intel_dp,
662 int common_rates[DP_MAX_SUPPORTED_RATES],
663 int *num_common_rates)
664 {
665 struct intel_display *display = to_intel_display(intel_dp);
666
667 drm_WARN_ON(display->drm,
668 !intel_dp->num_source_rates || !intel_dp->num_sink_rates);
669
670 *num_common_rates = intersect_rates(intel_dp->source_rates,
671 intel_dp->num_source_rates,
672 intel_dp->sink_rates,
673 intel_dp->num_sink_rates,
674 common_rates);
675
676 /* Paranoia, there should always be something in common. */
677 if (drm_WARN_ON(display->drm, *num_common_rates == 0)) {
678 common_rates[0] = 162000;
679 *num_common_rates = 1;
680 }
681 }
682
683 /* Return %true if any common link param changed. */
intel_dp_set_common_link_params(struct intel_dp * intel_dp)684 static bool intel_dp_set_common_link_params(struct intel_dp *intel_dp)
685 {
686 int num_common_rates;
687 int common_rates[DP_MAX_SUPPORTED_RATES];
688 bool params_changed = false;
689
690 intel_dp_get_common_rates(intel_dp, common_rates, &num_common_rates);
691 if (intel_dp_link_caps_update(intel_dp->link.caps,
692 common_rates, num_common_rates,
693 intel_dp_get_max_common_lane_count(intel_dp),
694 intel_dp->reset_link_params))
695 params_changed = true;
696
697 return params_changed;
698 }
699
intel_dp_mode_to_fec_clock(u32 mode_clock)700 u32 intel_dp_mode_to_fec_clock(u32 mode_clock)
701 {
702 return div_u64(mul_u32_u32(mode_clock, DP_DSC_FEC_OVERHEAD_FACTOR),
703 1000000U);
704 }
705
intel_dp_bw_fec_overhead(bool fec_enabled)706 int intel_dp_bw_fec_overhead(bool fec_enabled)
707 {
708 /*
709 * TODO: Calculate the actual overhead for a given mode.
710 * The hard-coded 1/0.972261=2.853% overhead factor
711 * corresponds (for instance) to the 8b/10b DP FEC 2.4% +
712 * 0.453% DSC overhead. This is enough for a 3840 width mode,
713 * which has a DSC overhead of up to ~0.2%, but may not be
714 * enough for a 1024 width mode where this is ~0.8% (on a 4
715 * lane DP link, with 2 DSC slices and 8 bpp color depth).
716 */
717 return fec_enabled ? DP_DSC_FEC_OVERHEAD_FACTOR : 1000000;
718 }
719
720 static int
small_joiner_ram_size_bits(struct intel_display * display)721 small_joiner_ram_size_bits(struct intel_display *display)
722 {
723 if (DISPLAY_VER(display) >= 13)
724 return 17280 * 8;
725 else if (DISPLAY_VER(display) >= 11)
726 return 7680 * 8;
727 else
728 return 6144 * 8;
729 }
730
align_min_vesa_compressed_bpp_x16(int min_link_bpp_x16)731 static int align_min_vesa_compressed_bpp_x16(int min_link_bpp_x16)
732 {
733 int i;
734
735 for (i = 0; i < ARRAY_SIZE(valid_dsc_bpp); i++) {
736 int vesa_bpp_x16 = fxp_q4_from_int(valid_dsc_bpp[i]);
737
738 if (vesa_bpp_x16 >= min_link_bpp_x16)
739 return vesa_bpp_x16;
740 }
741
742 return 0;
743 }
744
align_max_vesa_compressed_bpp_x16(int max_link_bpp_x16)745 static int align_max_vesa_compressed_bpp_x16(int max_link_bpp_x16)
746 {
747 int i;
748
749 for (i = ARRAY_SIZE(valid_dsc_bpp) - 1; i >= 0; i--) {
750 int vesa_bpp_x16 = fxp_q4_from_int(valid_dsc_bpp[i]);
751
752 if (vesa_bpp_x16 <= max_link_bpp_x16)
753 return vesa_bpp_x16;
754 }
755
756 return 0;
757 }
758
bigjoiner_interface_bits(struct intel_display * display)759 static int bigjoiner_interface_bits(struct intel_display *display)
760 {
761 return DISPLAY_VER(display) >= 14 ? 36 : 24;
762 }
763
bigjoiner_bw_max_bpp(struct intel_display * display,u32 mode_clock,int num_joined_pipes)764 static u32 bigjoiner_bw_max_bpp(struct intel_display *display, u32 mode_clock,
765 int num_joined_pipes)
766 {
767 u32 max_bpp;
768 /* With bigjoiner multiple dsc engines are used in parallel so PPC is 2 */
769 int ppc = 2;
770 int num_big_joiners = num_joined_pipes / 2;
771
772 max_bpp = display->cdclk.max_cdclk_freq * ppc * bigjoiner_interface_bits(display) /
773 intel_dp_mode_to_fec_clock(mode_clock);
774
775 max_bpp *= num_big_joiners;
776
777 return max_bpp;
778
779 }
780
small_joiner_ram_max_bpp(struct intel_display * display,u32 mode_hdisplay,int num_joined_pipes)781 static u32 small_joiner_ram_max_bpp(struct intel_display *display,
782 u32 mode_hdisplay,
783 int num_joined_pipes)
784 {
785 u32 max_bpp;
786
787 /* Small Joiner Check: output bpp <= joiner RAM (bits) / Horiz. width */
788 max_bpp = small_joiner_ram_size_bits(display) / mode_hdisplay;
789
790 max_bpp *= num_joined_pipes;
791
792 return max_bpp;
793 }
794
ultrajoiner_ram_bits(void)795 static int ultrajoiner_ram_bits(void)
796 {
797 return 4 * 72 * 512;
798 }
799
ultrajoiner_ram_max_bpp(u32 mode_hdisplay)800 static u32 ultrajoiner_ram_max_bpp(u32 mode_hdisplay)
801 {
802 return ultrajoiner_ram_bits() / mode_hdisplay;
803 }
804
805 /* TODO: return a bpp_x16 value */
806 static
get_max_compressed_bpp_with_joiner(struct intel_display * display,u32 mode_clock,u32 mode_hdisplay,int num_joined_pipes)807 u32 get_max_compressed_bpp_with_joiner(struct intel_display *display,
808 u32 mode_clock, u32 mode_hdisplay,
809 int num_joined_pipes)
810 {
811 u32 max_bpp = small_joiner_ram_max_bpp(display, mode_hdisplay, num_joined_pipes);
812
813 if (num_joined_pipes > 1)
814 max_bpp = min(max_bpp, bigjoiner_bw_max_bpp(display, mode_clock,
815 num_joined_pipes));
816 if (num_joined_pipes == 4)
817 max_bpp = min(max_bpp, ultrajoiner_ram_max_bpp(mode_hdisplay));
818
819 return max_bpp;
820 }
821
intel_dp_dsc_min_slice_count(const struct intel_connector * connector,int mode_clock,int mode_hdisplay)822 static int intel_dp_dsc_min_slice_count(const struct intel_connector *connector,
823 int mode_clock, int mode_hdisplay)
824 {
825 struct intel_display *display = to_intel_display(connector);
826 bool is_edp =
827 connector->base.connector_type == DRM_MODE_CONNECTOR_eDP;
828 int min_slice_count;
829 int max_slice_width;
830 int tp_rgb_yuv444;
831 int tp_yuv422_420;
832
833 /*
834 * TODO: allow using less than the maximum number of slices
835 * supported by the eDP sink, to allow using fewer DSC engines.
836 */
837 if (is_edp)
838 return drm_dp_dsc_sink_max_slice_count(connector->dp.dsc_dpcd, true);
839
840 /*
841 * TODO: Use the throughput value specific to the actual RGB/YUV
842 * format of the output.
843 * The RGB/YUV444 throughput value should be always either equal
844 * or smaller than the YUV422/420 value, but let's not depend on
845 * this assumption.
846 */
847 if (mode_clock > max(connector->dp.dsc_branch_caps.overall_throughput.rgb_yuv444,
848 connector->dp.dsc_branch_caps.overall_throughput.yuv422_420))
849 return 0;
850
851 if (mode_hdisplay > connector->dp.dsc_branch_caps.max_line_width)
852 return 0;
853
854 /*
855 * TODO: Pass the total pixel rate of all the streams transferred to
856 * an MST tiled display, calculate the total slice count for all tiles
857 * from this and the per-tile slice count from the total slice count.
858 */
859 tp_rgb_yuv444 = drm_dp_dsc_sink_max_slice_throughput(connector->dp.dsc_dpcd,
860 mode_clock, true);
861 tp_yuv422_420 = drm_dp_dsc_sink_max_slice_throughput(connector->dp.dsc_dpcd,
862 mode_clock, false);
863
864 /*
865 * TODO: Use the throughput value specific to the actual RGB/YUV
866 * format of the output.
867 * For now use the smaller of these, which is ok, potentially
868 * resulting in a higher than required minimum slice count.
869 * The RGB/YUV444 throughput value should be always either equal
870 * or smaller than the YUV422/420 value, but let's not depend on
871 * this assumption.
872 */
873 min_slice_count = DIV_ROUND_UP(mode_clock, min(tp_rgb_yuv444, tp_yuv422_420));
874
875 /*
876 * Due to some DSC engine BW limitations, we need to enable second
877 * slice and VDSC engine, whenever we approach close enough to max CDCLK
878 */
879 if (mode_clock >= ((display->cdclk.max_cdclk_freq * 85) / 100))
880 min_slice_count = max(min_slice_count, 2);
881
882 max_slice_width = drm_dp_dsc_sink_max_slice_width(connector->dp.dsc_dpcd);
883 if (max_slice_width < DP_DSC_MIN_SLICE_WIDTH_VALUE) {
884 drm_dbg_kms(display->drm,
885 "Unsupported slice width %d by DP DSC Sink device\n",
886 max_slice_width);
887 return 0;
888 }
889 /* Also take into account max slice width */
890 min_slice_count = max(min_slice_count,
891 DIV_ROUND_UP(mode_hdisplay, max_slice_width));
892
893 return min_slice_count;
894 }
895
896 static bool
intel_dp_dsc_get_slice_config(const struct intel_connector * connector,int mode_clock,int mode_hdisplay,int num_joined_pipes,struct intel_dsc_slice_config * config_ret)897 intel_dp_dsc_get_slice_config(const struct intel_connector *connector,
898 int mode_clock, int mode_hdisplay,
899 int num_joined_pipes,
900 struct intel_dsc_slice_config *config_ret)
901 {
902 struct intel_display *display = to_intel_display(connector);
903 int min_slice_count =
904 intel_dp_dsc_min_slice_count(connector, mode_clock, mode_hdisplay);
905 bool is_edp =
906 connector->base.connector_type == DRM_MODE_CONNECTOR_eDP;
907 u32 sink_slice_count_mask =
908 drm_dp_dsc_sink_slice_count_mask(connector->dp.dsc_dpcd, is_edp);
909 int slices_per_pipe;
910
911 /*
912 * Find the closest match to the valid slice count values
913 *
914 * Max HW DSC-per-pipe x slice-per-DSC (= slice-per-pipe) capability:
915 * ICL: 2x2
916 * BMG: 2x2, or for ultrajoined 4 pipes: 3x1
917 * TGL+: 2x4 (TODO: Add support for this)
918 *
919 * TODO: Explore if it's worth increasing the number of slices (from 1
920 * to 2 or 3), so that multiple VDSC engines can be used, thus
921 * reducing the minimum CDCLK requirement, which in turn is determined
922 * by the 1 pixel per clock VDSC engine throughput in
923 * intel_vdsc_min_cdclk().
924 */
925 for (slices_per_pipe = 1; slices_per_pipe <= 4; slices_per_pipe++) {
926 struct intel_dsc_slice_config config;
927 int slices_per_line;
928
929 if (!intel_dsc_get_slice_config(display,
930 num_joined_pipes, slices_per_pipe,
931 &config))
932 continue;
933
934 slices_per_line = intel_dsc_line_slice_count(&config);
935
936 if (!(drm_dp_dsc_slice_count_to_mask(slices_per_line) &
937 sink_slice_count_mask))
938 continue;
939
940 if (mode_hdisplay % slices_per_line)
941 continue;
942
943 if (min_slice_count <= slices_per_line) {
944 *config_ret = config;
945
946 return true;
947 }
948 }
949
950 /* Print slice count 1,2,4,..24 if bit#0,1,3,..23 is set in the mask. */
951 sink_slice_count_mask <<= 1;
952 drm_dbg_kms(display->drm,
953 "[CONNECTOR:%d:%s] Unsupported slice count (min: %d, sink supported: %*pbl)\n",
954 connector->base.base.id, connector->base.name,
955 min_slice_count,
956 (int)BITS_PER_TYPE(sink_slice_count_mask), &sink_slice_count_mask);
957
958 return false;
959 }
960
intel_dp_dsc_get_slice_count(const struct intel_connector * connector,int mode_clock,int mode_hdisplay,int num_joined_pipes)961 u8 intel_dp_dsc_get_slice_count(const struct intel_connector *connector,
962 int mode_clock, int mode_hdisplay,
963 int num_joined_pipes)
964 {
965 struct intel_dsc_slice_config config;
966
967 if (!intel_dp_dsc_get_slice_config(connector,
968 mode_clock, mode_hdisplay,
969 num_joined_pipes, &config))
970 return 0;
971
972 return intel_dsc_line_slice_count(&config);
973 }
974
source_can_output(struct intel_dp * intel_dp,enum intel_output_format format)975 static bool source_can_output(struct intel_dp *intel_dp,
976 enum intel_output_format format)
977 {
978 struct intel_display *display = to_intel_display(intel_dp);
979
980 switch (format) {
981 case INTEL_OUTPUT_FORMAT_RGB:
982 return true;
983
984 case INTEL_OUTPUT_FORMAT_YCBCR444:
985 /*
986 * No YCbCr output support on gmch platforms.
987 * Also, ILK doesn't seem capable of DP YCbCr output.
988 * The displayed image is severely corrupted. SNB+ is fine.
989 */
990 return !HAS_GMCH(display) && !display->platform.ironlake;
991
992 case INTEL_OUTPUT_FORMAT_YCBCR420:
993 /* Platform < Gen 11 cannot output YCbCr420 format */
994 return DISPLAY_VER(display) >= 11;
995
996 default:
997 MISSING_CASE(format);
998 return false;
999 }
1000 }
1001
1002 static bool
dfp_can_convert_from_rgb(struct intel_dp * intel_dp,enum intel_output_format sink_format)1003 dfp_can_convert_from_rgb(struct intel_dp *intel_dp,
1004 enum intel_output_format sink_format)
1005 {
1006 if (!drm_dp_is_branch(intel_dp->dpcd))
1007 return false;
1008
1009 if (sink_format == INTEL_OUTPUT_FORMAT_YCBCR444)
1010 return intel_dp->dfp.rgb_to_ycbcr;
1011
1012 if (sink_format == INTEL_OUTPUT_FORMAT_YCBCR420)
1013 return intel_dp->dfp.rgb_to_ycbcr &&
1014 intel_dp->dfp.ycbcr_444_to_420;
1015
1016 return false;
1017 }
1018
1019 static bool
dfp_can_convert_from_ycbcr444(struct intel_dp * intel_dp,enum intel_output_format sink_format)1020 dfp_can_convert_from_ycbcr444(struct intel_dp *intel_dp,
1021 enum intel_output_format sink_format)
1022 {
1023 if (!drm_dp_is_branch(intel_dp->dpcd))
1024 return false;
1025
1026 if (sink_format == INTEL_OUTPUT_FORMAT_YCBCR420)
1027 return intel_dp->dfp.ycbcr_444_to_420;
1028
1029 return false;
1030 }
1031
1032 static bool
dfp_can_convert(struct intel_dp * intel_dp,enum intel_output_format output_format,enum intel_output_format sink_format)1033 dfp_can_convert(struct intel_dp *intel_dp,
1034 enum intel_output_format output_format,
1035 enum intel_output_format sink_format)
1036 {
1037 switch (output_format) {
1038 case INTEL_OUTPUT_FORMAT_RGB:
1039 return dfp_can_convert_from_rgb(intel_dp, sink_format);
1040 case INTEL_OUTPUT_FORMAT_YCBCR444:
1041 return dfp_can_convert_from_ycbcr444(intel_dp, sink_format);
1042 default:
1043 MISSING_CASE(output_format);
1044 return false;
1045 }
1046
1047 return false;
1048 }
1049
1050 static enum intel_output_format
intel_dp_output_format(struct intel_connector * connector,enum intel_output_format sink_format)1051 intel_dp_output_format(struct intel_connector *connector,
1052 enum intel_output_format sink_format)
1053 {
1054 struct intel_display *display = to_intel_display(connector);
1055 struct intel_dp *intel_dp = intel_attached_dp(connector);
1056 enum intel_output_format force_dsc_output_format =
1057 intel_dp->force_dsc_output_format;
1058 enum intel_output_format output_format;
1059 if (force_dsc_output_format) {
1060 if (source_can_output(intel_dp, force_dsc_output_format) &&
1061 (!drm_dp_is_branch(intel_dp->dpcd) ||
1062 sink_format != force_dsc_output_format ||
1063 dfp_can_convert(intel_dp, force_dsc_output_format, sink_format)))
1064 return force_dsc_output_format;
1065
1066 drm_dbg_kms(display->drm, "Cannot force DSC output format\n");
1067 }
1068
1069 if (sink_format == INTEL_OUTPUT_FORMAT_RGB ||
1070 dfp_can_convert_from_rgb(intel_dp, sink_format))
1071 output_format = INTEL_OUTPUT_FORMAT_RGB;
1072
1073 else if (sink_format == INTEL_OUTPUT_FORMAT_YCBCR444 ||
1074 dfp_can_convert_from_ycbcr444(intel_dp, sink_format))
1075 output_format = INTEL_OUTPUT_FORMAT_YCBCR444;
1076
1077 else
1078 output_format = INTEL_OUTPUT_FORMAT_YCBCR420;
1079
1080 drm_WARN_ON(display->drm, !source_can_output(intel_dp, output_format));
1081
1082 return output_format;
1083 }
1084
intel_dp_min_bpp(enum intel_output_format output_format)1085 int intel_dp_min_bpp(enum intel_output_format output_format)
1086 {
1087 if (output_format == INTEL_OUTPUT_FORMAT_RGB)
1088 return intel_display_min_pipe_bpp();
1089 else
1090 return 8 * 3;
1091 }
1092
intel_dp_output_format_link_bpp_x16(enum intel_output_format output_format,int pipe_bpp)1093 int intel_dp_output_format_link_bpp_x16(enum intel_output_format output_format, int pipe_bpp)
1094 {
1095 /*
1096 * bpp value was assumed to RGB format. And YCbCr 4:2:0 output
1097 * format of the number of bytes per pixel will be half the number
1098 * of bytes of RGB pixel.
1099 */
1100 if (output_format == INTEL_OUTPUT_FORMAT_YCBCR420)
1101 pipe_bpp /= 2;
1102
1103 return fxp_q4_from_int(pipe_bpp);
1104 }
1105
1106 static int
intel_dp_mode_min_link_bpp_x16(struct intel_connector * connector,const struct drm_display_mode * mode,enum intel_output_format output_format)1107 intel_dp_mode_min_link_bpp_x16(struct intel_connector *connector,
1108 const struct drm_display_mode *mode,
1109 enum intel_output_format output_format)
1110 {
1111 return intel_dp_output_format_link_bpp_x16(output_format,
1112 intel_dp_min_bpp(output_format));
1113 }
1114
intel_dp_hdisplay_bad(struct intel_display * display,int hdisplay)1115 static bool intel_dp_hdisplay_bad(struct intel_display *display,
1116 int hdisplay)
1117 {
1118 /*
1119 * Older platforms don't like hdisplay==4096 with DP.
1120 *
1121 * On ILK/SNB/IVB the pipe seems to be somewhat running (scanline
1122 * and frame counter increment), but we don't get vblank interrupts,
1123 * and the pipe underruns immediately. The link also doesn't seem
1124 * to get trained properly.
1125 *
1126 * On CHV the vblank interrupts don't seem to disappear but
1127 * otherwise the symptoms are similar.
1128 *
1129 * TODO: confirm the behaviour on HSW+
1130 */
1131 return hdisplay == 4096 && !HAS_DDI(display);
1132 }
1133
intel_dp_max_tmds_clock(struct intel_dp * intel_dp)1134 static int intel_dp_max_tmds_clock(struct intel_dp *intel_dp)
1135 {
1136 struct intel_connector *connector = intel_dp->attached_connector;
1137 const struct drm_display_info *info = &connector->base.display_info;
1138 int max_tmds_clock = intel_dp->dfp.max_tmds_clock;
1139
1140 /* Only consider the sink's max TMDS clock if we know this is a HDMI DFP */
1141 if (max_tmds_clock && info->max_tmds_clock)
1142 max_tmds_clock = min(max_tmds_clock, info->max_tmds_clock);
1143
1144 return max_tmds_clock;
1145 }
1146
1147 static enum drm_mode_status
intel_dp_tmds_clock_valid(struct intel_dp * intel_dp,int clock,int bpc,enum intel_output_format sink_format,bool respect_downstream_limits)1148 intel_dp_tmds_clock_valid(struct intel_dp *intel_dp,
1149 int clock, int bpc,
1150 enum intel_output_format sink_format,
1151 bool respect_downstream_limits)
1152 {
1153 int tmds_clock, min_tmds_clock, max_tmds_clock;
1154
1155 if (!respect_downstream_limits)
1156 return MODE_OK;
1157
1158 tmds_clock = intel_hdmi_tmds_clock(clock, bpc, sink_format);
1159
1160 min_tmds_clock = intel_dp->dfp.min_tmds_clock;
1161 max_tmds_clock = intel_dp_max_tmds_clock(intel_dp);
1162
1163 if (min_tmds_clock && tmds_clock < min_tmds_clock)
1164 return MODE_CLOCK_LOW;
1165
1166 if (max_tmds_clock && tmds_clock > max_tmds_clock)
1167 return MODE_CLOCK_HIGH;
1168
1169 return MODE_OK;
1170 }
1171
frl_required_bw(int clock,int bpc,enum intel_output_format sink_format)1172 static int frl_required_bw(int clock, int bpc,
1173 enum intel_output_format sink_format)
1174 {
1175 if (sink_format == INTEL_OUTPUT_FORMAT_YCBCR420)
1176 clock /= 2;
1177
1178 return clock * bpc * 3;
1179 }
1180
1181 static enum drm_mode_status
intel_dp_mode_valid_downstream(struct intel_connector * connector,const struct drm_display_mode * mode,int target_clock,enum intel_output_format sink_format)1182 intel_dp_mode_valid_downstream(struct intel_connector *connector,
1183 const struct drm_display_mode *mode,
1184 int target_clock,
1185 enum intel_output_format sink_format)
1186 {
1187 struct intel_dp *intel_dp = intel_attached_dp(connector);
1188
1189 /* If PCON supports FRL MODE, check FRL bandwidth constraints */
1190 if (intel_dp->dfp.pcon_max_frl_bw) {
1191 int target_bw, max_frl_bw;
1192
1193 /* Assume 8bpc for the FRL bandwidth check */
1194 target_bw = frl_required_bw(target_clock, 8, sink_format);
1195
1196 max_frl_bw = intel_dp->dfp.pcon_max_frl_bw;
1197
1198 /* converting bw from Gbps to Kbps*/
1199 max_frl_bw = max_frl_bw * 1000000;
1200
1201 if (target_bw > max_frl_bw)
1202 return MODE_CLOCK_HIGH;
1203
1204 return MODE_OK;
1205 }
1206
1207 if (intel_dp->dfp.max_dotclock &&
1208 target_clock > intel_dp->dfp.max_dotclock)
1209 return MODE_CLOCK_HIGH;
1210
1211 /* Assume 8bpc for the DP++/HDMI/DVI TMDS clock check */
1212 return intel_dp_tmds_clock_valid(intel_dp, target_clock,
1213 8, sink_format, true);
1214 }
1215
1216 static enum drm_mode_status
intel_dp_sink_format_valid(struct intel_connector * connector,const struct drm_display_mode * mode,enum intel_output_format sink_format)1217 intel_dp_sink_format_valid(struct intel_connector *connector,
1218 const struct drm_display_mode *mode,
1219 enum intel_output_format sink_format)
1220 {
1221 struct intel_dp *intel_dp = intel_attached_dp(connector);
1222 const struct drm_display_info *info = &connector->base.display_info;
1223
1224 switch (sink_format) {
1225 case INTEL_OUTPUT_FORMAT_YCBCR420:
1226 if (intel_dp->dfp.min_tmds_clock &&
1227 !intel_dp_has_hdmi_sink(intel_dp))
1228 return MODE_NO_420;
1229
1230 if (!connector->base.ycbcr_420_allowed ||
1231 !drm_mode_is_420(info, mode))
1232 return MODE_NO_420;
1233
1234 return MODE_OK;
1235 case INTEL_OUTPUT_FORMAT_RGB:
1236 return MODE_OK;
1237 default:
1238 MISSING_CASE(sink_format);
1239 return MODE_BAD;
1240 }
1241 }
1242
intel_dp_max_hdisplay_per_pipe(struct intel_display * display)1243 int intel_dp_max_hdisplay_per_pipe(struct intel_display *display)
1244 {
1245 return DISPLAY_VER(display) >= 30 ? 6144 : 5120;
1246 }
1247
intel_dp_has_dsc(const struct intel_connector * connector)1248 bool intel_dp_has_dsc(const struct intel_connector *connector)
1249 {
1250 struct intel_display *display = to_intel_display(connector);
1251
1252 if (!HAS_DSC(display))
1253 return false;
1254
1255 if (connector->mst.dp && !HAS_DSC_MST(display))
1256 return false;
1257
1258 if (connector->base.connector_type == DRM_MODE_CONNECTOR_eDP &&
1259 connector->panel.vbt.edp.dsc_disable)
1260 return false;
1261
1262 if (!drm_dp_sink_supports_dsc(connector->dp.dsc_dpcd))
1263 return false;
1264
1265 return true;
1266 }
1267
1268 static
intel_dp_can_join(struct intel_dp * intel_dp,int num_joined_pipes)1269 bool intel_dp_can_join(struct intel_dp *intel_dp,
1270 int num_joined_pipes)
1271 {
1272 struct intel_display *display = to_intel_display(intel_dp);
1273
1274 if (num_joined_pipes > 1 && !intel_dp_has_joiner(intel_dp))
1275 return false;
1276
1277 switch (num_joined_pipes) {
1278 case 1:
1279 return true;
1280 case 2:
1281 return HAS_BIGJOINER(display) ||
1282 HAS_UNCOMPRESSED_JOINER(display);
1283 case 4:
1284 return HAS_ULTRAJOINER(display);
1285 default:
1286 return false;
1287 }
1288 }
1289
intel_dp_dotclk_valid(struct intel_display * display,int target_clock,int htotal,int dsc_slice_count,int num_joined_pipes)1290 bool intel_dp_dotclk_valid(struct intel_display *display,
1291 int target_clock,
1292 int htotal,
1293 int dsc_slice_count,
1294 int num_joined_pipes)
1295 {
1296 int max_dotclk = display->cdclk.max_dotclk_freq;
1297 int effective_dotclk_limit;
1298
1299 effective_dotclk_limit = max_dotclk * num_joined_pipes;
1300
1301 if (dsc_slice_count)
1302 target_clock = intel_dsc_get_pixel_rate_with_dsc_bubbles(display,
1303 target_clock,
1304 htotal,
1305 dsc_slice_count);
1306 else
1307 effective_dotclk_limit =
1308 intel_max_uncompressed_dotclock(display) * num_joined_pipes;
1309
1310 return target_clock <= effective_dotclk_limit;
1311 }
1312
1313 static enum drm_mode_status
intel_dp_mode_valid_format(struct intel_connector * connector,const struct drm_display_mode * mode,int target_clock,enum intel_output_format sink_format)1314 intel_dp_mode_valid_format(struct intel_connector *connector,
1315 const struct drm_display_mode *mode,
1316 int target_clock,
1317 enum intel_output_format sink_format)
1318 {
1319 struct intel_display *display = to_intel_display(connector);
1320 struct intel_dp *intel_dp = intel_attached_dp(connector);
1321 enum intel_output_format output_format;
1322 int max_rate, mode_rate, max_lanes, max_link_clock;
1323 struct intel_dp_link_config max_bw_config;
1324 u16 dsc_max_compressed_bpp = 0;
1325 enum drm_mode_status status;
1326 bool dsc = false;
1327 int num_joined_pipes;
1328 int link_bpp_x16;
1329
1330 status = intel_dp_sink_format_valid(connector, mode, sink_format);
1331 if (status != MODE_OK)
1332 return status;
1333
1334 output_format = intel_dp_output_format(connector, sink_format);
1335
1336 intel_dp_link_caps_get_max_bw_config(intel_dp->link.caps, &max_bw_config);
1337 max_link_clock = max_bw_config.rate;
1338 max_lanes = max_bw_config.lane_count;
1339
1340 max_rate = intel_dp_max_link_data_rate(intel_dp, max_link_clock, max_lanes);
1341
1342 link_bpp_x16 = intel_dp_mode_min_link_bpp_x16(connector, mode,
1343 output_format);
1344 mode_rate = intel_dp_link_required(max_link_clock, max_lanes,
1345 target_clock, mode->hdisplay,
1346 link_bpp_x16, 0);
1347
1348 /*
1349 * We cannot determine the required pipe‑join count before knowing whether
1350 * DSC is needed, nor can we determine DSC need without knowing the pipe
1351 * count.
1352 * Because of this dependency cycle, the only correct approach is to iterate
1353 * over candidate pipe counts and evaluate each combination.
1354 */
1355 status = MODE_CLOCK_HIGH;
1356 for_each_joiner_candidate(connector, mode, num_joined_pipes) {
1357 int dsc_slice_count = 0;
1358
1359 status = intel_pfit_mode_valid(display, mode, output_format, num_joined_pipes);
1360 if (status != MODE_OK)
1361 continue;
1362
1363 if (intel_dp_has_dsc(connector)) {
1364 int pipe_bpp;
1365
1366 dsc_slice_count = intel_dp_dsc_get_slice_count(connector,
1367 target_clock,
1368 mode->hdisplay,
1369 num_joined_pipes);
1370
1371 /*
1372 * TBD pass the connector BPC,
1373 * for now U8_MAX so that max BPC on that platform would be picked
1374 */
1375 pipe_bpp = intel_dp_dsc_compute_max_bpp(connector, U8_MAX);
1376
1377 /*
1378 * Output bpp is stored in 6.4 format so right shift by 4 to get the
1379 * integer value since we support only integer values of bpp.
1380 */
1381 if (intel_dp_is_edp(intel_dp)) {
1382 dsc_max_compressed_bpp =
1383 drm_edp_dsc_sink_output_bpp(connector->dp.dsc_dpcd) >> 4;
1384
1385 dsc = dsc_max_compressed_bpp && dsc_slice_count;
1386 } else if (drm_dp_sink_supports_fec(connector->dp.fec_capability)) {
1387 unsigned long bw_overhead_flags = 0;
1388
1389 if (!drm_dp_is_uhbr_rate(max_link_clock))
1390 bw_overhead_flags |= DRM_DP_BW_OVERHEAD_FEC;
1391
1392 dsc = intel_dp_mode_valid_with_dsc(connector,
1393 max_link_clock, max_lanes,
1394 target_clock, mode->hdisplay,
1395 num_joined_pipes,
1396 output_format, pipe_bpp,
1397 bw_overhead_flags);
1398 }
1399 }
1400
1401 if (intel_dp_joiner_needs_dsc(display, num_joined_pipes) && !dsc) {
1402 status = MODE_CLOCK_HIGH;
1403 continue;
1404 }
1405
1406 if (mode_rate > max_rate && !dsc) {
1407 status = MODE_CLOCK_HIGH;
1408 continue;
1409 }
1410
1411 status = intel_mode_valid_max_plane_size(display, mode, num_joined_pipes);
1412 if (status != MODE_OK)
1413 continue;
1414
1415 if (!dsc)
1416 dsc_slice_count = 0;
1417
1418 if (!intel_dp_dotclk_valid(display,
1419 target_clock,
1420 mode->htotal,
1421 dsc_slice_count,
1422 num_joined_pipes)) {
1423 status = MODE_CLOCK_HIGH;
1424 continue;
1425 }
1426
1427 break;
1428 }
1429
1430 if (status != MODE_OK)
1431 return status;
1432
1433 return intel_dp_mode_valid_downstream(connector, mode,
1434 target_clock, sink_format);
1435 }
1436
1437 static enum drm_mode_status
intel_dp_mode_valid(struct drm_connector * _connector,const struct drm_display_mode * mode)1438 intel_dp_mode_valid(struct drm_connector *_connector,
1439 const struct drm_display_mode *mode)
1440 {
1441 struct intel_display *display = to_intel_display(_connector->dev);
1442 struct intel_connector *connector = to_intel_connector(_connector);
1443 const struct drm_display_info *info = &connector->base.display_info;
1444 struct intel_dp *intel_dp = intel_attached_dp(connector);
1445 int target_clock = mode->clock;
1446 enum drm_mode_status status;
1447
1448 status = intel_cpu_transcoder_mode_valid(display, mode);
1449 if (status != MODE_OK)
1450 return status;
1451
1452 if (mode->flags & DRM_MODE_FLAG_DBLCLK)
1453 return MODE_H_ILLEGAL;
1454
1455 if (mode->clock < 10000)
1456 return MODE_CLOCK_LOW;
1457
1458 if (intel_dp_hdisplay_bad(display, mode->hdisplay))
1459 return MODE_H_ILLEGAL;
1460
1461 if (intel_dp_is_edp(intel_dp)) {
1462 status = intel_panel_mode_valid(connector, mode, &target_clock);
1463 if (status != MODE_OK)
1464 return status;
1465 }
1466
1467 /*
1468 * TODO: Even when using a 4:2:0 sink_format intel_dp_output_format()
1469 * will always choose a 4:4:4 output_format if the DFP can do the
1470 * 4:4:4->4:2:0 conversion for us. Thus a mode may still be rejected
1471 * if we only have enough DP link bandwidth for 4:2:0 but not for
1472 * 4:4:4. Another attempt with an explicit 4:2:0 output_format might
1473 * be needed here. intel_dp_compute_config() would need the same
1474 * logic, or else the actual modeset would still fail.
1475 *
1476 * Also a lot of the checks only depend on output_format but not
1477 * sink_format, so we are potentially doing redundant work by
1478 * testing the same output_format for two different sink_formats.
1479 */
1480 if (drm_mode_is_420_only(info, mode)) {
1481 status = intel_dp_mode_valid_format(connector, mode, target_clock,
1482 INTEL_OUTPUT_FORMAT_YCBCR420);
1483 } else {
1484 status = intel_dp_mode_valid_format(connector, mode, target_clock,
1485 INTEL_OUTPUT_FORMAT_RGB);
1486
1487 if (status != MODE_OK && drm_mode_is_420_also(info, mode))
1488 status = intel_dp_mode_valid_format(connector, mode, target_clock,
1489 INTEL_OUTPUT_FORMAT_YCBCR420);
1490 }
1491
1492 return status;
1493 }
1494
intel_dp_source_supports_tps3(struct intel_display * display)1495 bool intel_dp_source_supports_tps3(struct intel_display *display)
1496 {
1497 return DISPLAY_VER(display) >= 9 ||
1498 display->platform.broadwell || display->platform.haswell;
1499 }
1500
intel_dp_source_supports_tps4(struct intel_display * display)1501 bool intel_dp_source_supports_tps4(struct intel_display *display)
1502 {
1503 return DISPLAY_VER(display) >= 10;
1504 }
1505
seq_buf_print_array(struct seq_buf * s,const int * array,int nelem)1506 static void seq_buf_print_array(struct seq_buf *s, const int *array, int nelem)
1507 {
1508 int i;
1509
1510 for (i = 0; i < nelem; i++)
1511 seq_buf_printf(s, "%s%d", i ? ", " : "", array[i]);
1512 }
1513
intel_dp_print_rates(struct intel_dp * intel_dp)1514 static void intel_dp_print_rates(struct intel_dp *intel_dp)
1515 {
1516 struct intel_display *display = to_intel_display(intel_dp);
1517 DECLARE_SEQ_BUF(s, 128); /* FIXME: too big for stack? */
1518
1519 if (!drm_debug_enabled(DRM_UT_KMS))
1520 return;
1521
1522 seq_buf_print_array(&s, intel_dp->source_rates, intel_dp->num_source_rates);
1523 drm_dbg_kms(display->drm, "source rates: %s\n", seq_buf_str(&s));
1524
1525 seq_buf_clear(&s);
1526 seq_buf_print_array(&s, intel_dp->sink_rates, intel_dp->num_sink_rates);
1527 drm_dbg_kms(display->drm, "sink rates: %s\n", seq_buf_str(&s));
1528
1529 intel_dp_link_caps_print_common_rates(intel_dp->link.caps);
1530 }
1531
intel_dp_rate_select(struct intel_dp * intel_dp,int rate)1532 int intel_dp_rate_select(struct intel_dp *intel_dp, int rate)
1533 {
1534 struct intel_display *display = to_intel_display(intel_dp);
1535 int i = intel_dp_rate_index(intel_dp->sink_rates,
1536 intel_dp->num_sink_rates, rate);
1537
1538 if (drm_WARN_ON(display->drm, i < 0))
1539 i = 0;
1540
1541 return i;
1542 }
1543
intel_dp_compute_rate(struct intel_dp * intel_dp,int port_clock,u8 * link_bw,u8 * rate_select)1544 void intel_dp_compute_rate(struct intel_dp *intel_dp, int port_clock,
1545 u8 *link_bw, u8 *rate_select)
1546 {
1547 struct intel_display *display = to_intel_display(intel_dp);
1548
1549 /* FIXME g4x can't generate an exact 2.7GHz with the 96MHz non-SSC refclk */
1550 if (display->platform.g4x && port_clock == 268800)
1551 port_clock = 270000;
1552
1553 /* eDP 1.4 rate select method. */
1554 if (intel_dp->use_rate_select) {
1555 *link_bw = 0;
1556 *rate_select =
1557 intel_dp_rate_select(intel_dp, port_clock);
1558 } else {
1559 *link_bw = drm_dp_link_rate_to_bw_code(port_clock);
1560 *rate_select = 0;
1561 }
1562 }
1563
intel_dp_has_hdmi_sink(struct intel_dp * intel_dp)1564 bool intel_dp_has_hdmi_sink(struct intel_dp *intel_dp)
1565 {
1566 struct intel_connector *connector = intel_dp->attached_connector;
1567
1568 return connector->base.display_info.is_hdmi;
1569 }
1570
intel_dp_source_supports_fec(struct intel_dp * intel_dp,const struct intel_crtc_state * pipe_config)1571 static bool intel_dp_source_supports_fec(struct intel_dp *intel_dp,
1572 const struct intel_crtc_state *pipe_config)
1573 {
1574 struct intel_display *display = to_intel_display(intel_dp);
1575 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
1576
1577 if (DISPLAY_VER(display) >= 12)
1578 return true;
1579
1580 if (DISPLAY_VER(display) == 11 && encoder->port != PORT_A &&
1581 !intel_crtc_has_type(pipe_config, INTEL_OUTPUT_DP_MST))
1582 return true;
1583
1584 return false;
1585 }
1586
intel_dp_supports_fec(struct intel_dp * intel_dp,const struct intel_connector * connector,const struct intel_crtc_state * pipe_config)1587 bool intel_dp_supports_fec(struct intel_dp *intel_dp,
1588 const struct intel_connector *connector,
1589 const struct intel_crtc_state *pipe_config)
1590 {
1591 return intel_dp_source_supports_fec(intel_dp, pipe_config) &&
1592 drm_dp_sink_supports_fec(connector->dp.fec_capability);
1593 }
1594
intel_dp_supports_dsc(struct intel_dp * intel_dp,const struct intel_connector * connector,const struct intel_crtc_state * crtc_state)1595 bool intel_dp_supports_dsc(struct intel_dp *intel_dp,
1596 const struct intel_connector *connector,
1597 const struct intel_crtc_state *crtc_state)
1598 {
1599 if (!intel_dp_has_dsc(connector))
1600 return false;
1601
1602 if (intel_crtc_has_type(crtc_state, INTEL_OUTPUT_DP) &&
1603 !intel_dp_supports_fec(intel_dp, connector, crtc_state))
1604 return false;
1605
1606 return intel_dsc_source_support(crtc_state);
1607 }
1608
intel_dp_hdmi_compute_bpc(struct intel_dp * intel_dp,const struct intel_crtc_state * crtc_state,int bpc,bool respect_downstream_limits)1609 static int intel_dp_hdmi_compute_bpc(struct intel_dp *intel_dp,
1610 const struct intel_crtc_state *crtc_state,
1611 int bpc, bool respect_downstream_limits)
1612 {
1613 int clock = crtc_state->hw.adjusted_mode.crtc_clock;
1614
1615 /*
1616 * Current bpc could already be below 8bpc due to
1617 * FDI bandwidth constraints or other limits.
1618 * HDMI minimum is 8bpc however.
1619 */
1620 bpc = max(bpc, 8);
1621
1622 /*
1623 * We will never exceed downstream TMDS clock limits while
1624 * attempting deep color. If the user insists on forcing an
1625 * out of spec mode they will have to be satisfied with 8bpc.
1626 */
1627 if (!respect_downstream_limits)
1628 bpc = 8;
1629
1630 for (; bpc >= 8; bpc -= 2) {
1631 if (intel_hdmi_bpc_possible(crtc_state, bpc,
1632 intel_dp_has_hdmi_sink(intel_dp)) &&
1633 intel_dp_tmds_clock_valid(intel_dp, clock, bpc, crtc_state->sink_format,
1634 respect_downstream_limits) == MODE_OK)
1635 return bpc;
1636 }
1637
1638 return -EINVAL;
1639 }
1640
intel_dp_max_bpp(struct intel_dp * intel_dp,const struct intel_crtc_state * crtc_state,bool respect_downstream_limits)1641 static int intel_dp_max_bpp(struct intel_dp *intel_dp,
1642 const struct intel_crtc_state *crtc_state,
1643 bool respect_downstream_limits)
1644 {
1645 struct intel_display *display = to_intel_display(intel_dp);
1646 struct intel_connector *connector = intel_dp->attached_connector;
1647 int bpp, bpc;
1648
1649 bpc = crtc_state->max_pipe_bpp / 3;
1650
1651 if (intel_dp->dfp.max_bpc)
1652 bpc = min_t(int, bpc, intel_dp->dfp.max_bpc);
1653
1654 if (intel_dp->dfp.min_tmds_clock) {
1655 int max_hdmi_bpc;
1656
1657 max_hdmi_bpc = intel_dp_hdmi_compute_bpc(intel_dp, crtc_state, bpc,
1658 respect_downstream_limits);
1659 if (max_hdmi_bpc < 0)
1660 return 0;
1661
1662 bpc = min(bpc, max_hdmi_bpc);
1663 }
1664
1665 bpp = bpc * 3;
1666 if (intel_dp_is_edp(intel_dp)) {
1667 /* Get bpp from vbt only for panels that dont have bpp in edid */
1668 if (connector->base.display_info.bpc == 0 &&
1669 connector->panel.vbt.edp.bpp &&
1670 connector->panel.vbt.edp.bpp < bpp) {
1671 drm_dbg_kms(display->drm,
1672 "clamping bpp for eDP panel to BIOS-provided %i\n",
1673 connector->panel.vbt.edp.bpp);
1674 bpp = connector->panel.vbt.edp.bpp;
1675 }
1676 }
1677
1678 return bpp;
1679 }
1680
has_seamless_m_n(struct intel_connector * connector)1681 static bool has_seamless_m_n(struct intel_connector *connector)
1682 {
1683 struct intel_display *display = to_intel_display(connector);
1684
1685 /*
1686 * Seamless M/N reprogramming only implemented
1687 * for BDW+ double buffered M/N registers so far.
1688 */
1689 return HAS_DOUBLE_BUFFERED_M_N(display) &&
1690 intel_panel_drrs_type(connector) == DRRS_TYPE_SEAMLESS;
1691 }
1692
intel_dp_mode_clock(const struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)1693 static int intel_dp_mode_clock(const struct intel_crtc_state *crtc_state,
1694 const struct drm_connector_state *conn_state)
1695 {
1696 struct intel_connector *connector = to_intel_connector(conn_state->connector);
1697 const struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
1698
1699 /* FIXME a bit of a mess wrt clock vs. crtc_clock */
1700 if (has_seamless_m_n(connector))
1701 return intel_panel_highest_mode(connector, adjusted_mode)->clock;
1702 else
1703 return adjusted_mode->crtc_clock;
1704 }
1705
1706 /* Optimize link config in order: max bpp, min clock, min lanes */
1707 static int
intel_dp_compute_link_config_wide(struct intel_dp * intel_dp,struct intel_crtc_state * pipe_config,const struct drm_connector_state * conn_state,const struct link_config_limits * limits)1708 intel_dp_compute_link_config_wide(struct intel_dp *intel_dp,
1709 struct intel_crtc_state *pipe_config,
1710 const struct drm_connector_state *conn_state,
1711 const struct link_config_limits *limits)
1712 {
1713 struct intel_connector *connector = to_intel_connector(conn_state->connector);
1714 int bpp, clock = intel_dp_mode_clock(pipe_config, conn_state);
1715 struct intel_dp_link_caps *link_caps = intel_dp->link.caps;
1716 struct intel_dp_link_caps_order order =
1717 intel_dp_link_caps_connector_compute_order(connector);
1718 int err = -EINVAL;
1719 int link_avail;
1720
1721 for (bpp = fxp_q4_to_int(limits->link.max_bpp_x16);
1722 bpp >= fxp_q4_to_int(limits->link.min_bpp_x16);
1723 bpp -= 2 * 3) {
1724 int link_bpp_x16 =
1725 intel_dp_output_format_link_bpp_x16(pipe_config->output_format, bpp);
1726 struct intel_dp_link_config link_config;
1727 struct intel_dp_link_caps_iter iter;
1728
1729 intel_dp_link_caps_iter_start(&iter, link_caps, order, limits->link_config_filter);
1730 for_each_dp_link_config(&iter, &link_config) {
1731 const struct drm_display_mode *adjusted_mode =
1732 &pipe_config->hw.adjusted_mode;
1733 int mode_rate;
1734
1735 mode_rate = intel_dp_link_required(link_config.rate,
1736 link_config.lane_count,
1737 clock, adjusted_mode->hdisplay,
1738 link_bpp_x16, 0);
1739
1740 link_avail = intel_dp_max_link_data_rate(intel_dp,
1741 link_config.rate,
1742 link_config.lane_count);
1743
1744 if (mode_rate <= link_avail) {
1745 pipe_config->lane_count = link_config.lane_count;
1746 pipe_config->pipe_bpp = bpp;
1747 pipe_config->port_clock = link_config.rate;
1748
1749 err = 0;
1750
1751 break;
1752 }
1753 }
1754 intel_dp_link_caps_iter_end(&iter);
1755
1756 if (!err)
1757 break;
1758 }
1759
1760 return err;
1761 }
1762
intel_dp_dsc_max_src_input_bpc(struct intel_display * display)1763 int intel_dp_dsc_max_src_input_bpc(struct intel_display *display)
1764 {
1765 /* Max DSC Input BPC for ICL is 10 and for TGL+ is 12 */
1766 if (DISPLAY_VER(display) >= 12)
1767 return 12;
1768 if (DISPLAY_VER(display) == 11)
1769 return 10;
1770
1771 return intel_dp_dsc_min_src_input_bpc();
1772 }
1773
align_min_sink_dsc_input_bpp(const struct intel_connector * connector,int min_pipe_bpp)1774 static int align_min_sink_dsc_input_bpp(const struct intel_connector *connector,
1775 int min_pipe_bpp)
1776 {
1777 u8 dsc_bpc[3];
1778 int num_bpc;
1779 int i;
1780
1781 num_bpc = drm_dp_dsc_sink_supported_input_bpcs(connector->dp.dsc_dpcd,
1782 dsc_bpc);
1783 for (i = num_bpc - 1; i >= 0; i--) {
1784 if (dsc_bpc[i] * 3 >= min_pipe_bpp)
1785 return dsc_bpc[i] * 3;
1786 }
1787
1788 return 0;
1789 }
1790
align_max_sink_dsc_input_bpp(const struct intel_connector * connector,int max_pipe_bpp)1791 static int align_max_sink_dsc_input_bpp(const struct intel_connector *connector,
1792 int max_pipe_bpp)
1793 {
1794 u8 dsc_bpc[3];
1795 int num_bpc;
1796 int i;
1797
1798 num_bpc = drm_dp_dsc_sink_supported_input_bpcs(connector->dp.dsc_dpcd,
1799 dsc_bpc);
1800 for (i = 0; i < num_bpc; i++) {
1801 if (dsc_bpc[i] * 3 <= max_pipe_bpp)
1802 return dsc_bpc[i] * 3;
1803 }
1804
1805 return 0;
1806 }
1807
intel_dp_dsc_compute_max_bpp(const struct intel_connector * connector,u8 max_req_bpc)1808 int intel_dp_dsc_compute_max_bpp(const struct intel_connector *connector,
1809 u8 max_req_bpc)
1810 {
1811 struct intel_display *display = to_intel_display(connector);
1812 int dsc_max_bpc;
1813
1814 dsc_max_bpc = intel_dp_dsc_max_src_input_bpc(display);
1815
1816 if (!dsc_max_bpc)
1817 return dsc_max_bpc;
1818
1819 dsc_max_bpc = min(dsc_max_bpc, max_req_bpc);
1820
1821 return align_max_sink_dsc_input_bpp(connector, dsc_max_bpc * 3);
1822 }
1823
intel_dp_source_dsc_version_minor(struct intel_display * display)1824 static int intel_dp_source_dsc_version_minor(struct intel_display *display)
1825 {
1826 return DISPLAY_VER(display) >= 14 ? 2 : 1;
1827 }
1828
intel_dp_sink_dsc_version_minor(const u8 dsc_dpcd[DP_DSC_RECEIVER_CAP_SIZE])1829 static int intel_dp_sink_dsc_version_minor(const u8 dsc_dpcd[DP_DSC_RECEIVER_CAP_SIZE])
1830 {
1831 return (dsc_dpcd[DP_DSC_REV - DP_DSC_SUPPORT] & DP_DSC_MINOR_MASK) >>
1832 DP_DSC_MINOR_SHIFT;
1833 }
1834
intel_dp_get_slice_height(int vactive)1835 static int intel_dp_get_slice_height(int vactive)
1836 {
1837 int slice_height;
1838
1839 /*
1840 * VDSC 1.2a spec in Section 3.8 Options for Slices implies that 108
1841 * lines is an optimal slice height, but any size can be used as long as
1842 * vertical active integer multiple and maximum vertical slice count
1843 * requirements are met.
1844 */
1845 for (slice_height = 108; slice_height <= vactive; slice_height += 2)
1846 if (vactive % slice_height == 0)
1847 return slice_height;
1848
1849 /*
1850 * Highly unlikely we reach here as most of the resolutions will end up
1851 * finding appropriate slice_height in above loop but returning
1852 * slice_height as 2 here as it should work with all resolutions.
1853 */
1854 return 2;
1855 }
1856
intel_dp_dsc_compute_params(const struct intel_connector * connector,struct intel_crtc_state * crtc_state)1857 static int intel_dp_dsc_compute_params(const struct intel_connector *connector,
1858 struct intel_crtc_state *crtc_state)
1859 {
1860 struct intel_display *display = to_intel_display(connector);
1861 struct drm_dsc_config *vdsc_cfg = &crtc_state->dsc.config;
1862 int ret;
1863
1864 /*
1865 * RC_MODEL_SIZE is currently a constant across all configurations.
1866 *
1867 * FIXME: Look into using sink defined DPCD DP_DSC_RC_BUF_BLK_SIZE and
1868 * DP_DSC_RC_BUF_SIZE for this.
1869 */
1870 vdsc_cfg->rc_model_size = DSC_RC_MODEL_SIZE_CONST;
1871 vdsc_cfg->pic_height = crtc_state->hw.adjusted_mode.crtc_vdisplay;
1872
1873 vdsc_cfg->slice_height = intel_dp_get_slice_height(vdsc_cfg->pic_height);
1874
1875 ret = intel_dsc_compute_params(crtc_state);
1876 if (ret)
1877 return ret;
1878
1879 vdsc_cfg->dsc_version_major =
1880 (connector->dp.dsc_dpcd[DP_DSC_REV - DP_DSC_SUPPORT] &
1881 DP_DSC_MAJOR_MASK) >> DP_DSC_MAJOR_SHIFT;
1882 vdsc_cfg->dsc_version_minor =
1883 min(intel_dp_source_dsc_version_minor(display),
1884 intel_dp_sink_dsc_version_minor(connector->dp.dsc_dpcd));
1885 if (vdsc_cfg->convert_rgb)
1886 vdsc_cfg->convert_rgb =
1887 connector->dp.dsc_dpcd[DP_DSC_DEC_COLOR_FORMAT_CAP - DP_DSC_SUPPORT] &
1888 DP_DSC_RGB;
1889
1890 vdsc_cfg->line_buf_depth = min(INTEL_DP_DSC_MAX_LINE_BUF_DEPTH,
1891 drm_dp_dsc_sink_line_buf_depth(connector->dp.dsc_dpcd));
1892 if (!vdsc_cfg->line_buf_depth) {
1893 drm_dbg_kms(display->drm,
1894 "DSC Sink Line Buffer Depth invalid\n");
1895 return -EINVAL;
1896 }
1897
1898 vdsc_cfg->block_pred_enable =
1899 connector->dp.dsc_dpcd[DP_DSC_BLK_PREDICTION_SUPPORT - DP_DSC_SUPPORT] &
1900 DP_DSC_BLK_PREDICTION_IS_SUPPORTED;
1901
1902 return drm_dsc_compute_rc_parameters(vdsc_cfg);
1903 }
1904
intel_dp_dsc_supports_format(const struct intel_connector * connector,enum intel_output_format output_format)1905 static bool intel_dp_dsc_supports_format(const struct intel_connector *connector,
1906 enum intel_output_format output_format)
1907 {
1908 struct intel_display *display = to_intel_display(connector);
1909 u8 sink_dsc_format;
1910
1911 switch (output_format) {
1912 case INTEL_OUTPUT_FORMAT_RGB:
1913 sink_dsc_format = DP_DSC_RGB;
1914 break;
1915 case INTEL_OUTPUT_FORMAT_YCBCR444:
1916 sink_dsc_format = DP_DSC_YCbCr444;
1917 break;
1918 case INTEL_OUTPUT_FORMAT_YCBCR420:
1919 if (min(intel_dp_source_dsc_version_minor(display),
1920 intel_dp_sink_dsc_version_minor(connector->dp.dsc_dpcd)) < 2)
1921 return false;
1922 sink_dsc_format = DP_DSC_YCbCr420_Native;
1923 break;
1924 default:
1925 return false;
1926 }
1927
1928 return drm_dp_dsc_sink_supports_format(connector->dp.dsc_dpcd, sink_dsc_format);
1929 }
1930
is_bw_sufficient_for_dsc_config(struct intel_dp * intel_dp,int link_clock,int lane_count,int mode_clock,int mode_hdisplay,int dsc_slice_count,int link_bpp_x16,unsigned long bw_overhead_flags)1931 static bool is_bw_sufficient_for_dsc_config(struct intel_dp *intel_dp,
1932 int link_clock, int lane_count,
1933 int mode_clock, int mode_hdisplay,
1934 int dsc_slice_count, int link_bpp_x16,
1935 unsigned long bw_overhead_flags)
1936 {
1937 int available_bw;
1938 int required_bw;
1939
1940 available_bw = intel_dp_max_link_data_rate(intel_dp, link_clock, lane_count);
1941 required_bw = intel_dp_link_required(link_clock, lane_count,
1942 mode_clock, mode_hdisplay,
1943 link_bpp_x16, bw_overhead_flags);
1944
1945 return available_bw >= required_bw;
1946 }
1947
dsc_compute_link_config(struct intel_dp * intel_dp,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state,const struct link_config_limits * limits,int dsc_bpp_x16)1948 static int dsc_compute_link_config(struct intel_dp *intel_dp,
1949 struct intel_crtc_state *pipe_config,
1950 struct drm_connector_state *conn_state,
1951 const struct link_config_limits *limits,
1952 int dsc_bpp_x16)
1953 {
1954 const struct drm_display_mode *adjusted_mode = &pipe_config->hw.adjusted_mode;
1955 struct intel_connector *connector = to_intel_connector(conn_state->connector);
1956 struct intel_dp_link_caps *link_caps = intel_dp->link.caps;
1957 struct intel_dp_link_caps_order order =
1958 intel_dp_link_caps_connector_compute_order(connector);
1959 struct intel_dp_link_config link_config;
1960 struct intel_dp_link_caps_iter iter;
1961 int err = -EINVAL;
1962
1963 intel_dp_link_caps_iter_start(&iter, link_caps, order, limits->link_config_filter);
1964 for_each_dp_link_config(&iter, &link_config) {
1965 /*
1966 * FIXME: intel_dp_mtp_tu_compute_config() requires
1967 * ->lane_count and ->port_clock set before we know
1968 * they'll work. If we end up failing altogether,
1969 * they'll remain in crtc state. This shouldn't matter,
1970 * as we'd then bail out from compute config, but it's
1971 * just ugly.
1972 */
1973 pipe_config->lane_count = link_config.lane_count;
1974 pipe_config->port_clock = link_config.rate;
1975
1976 if (drm_dp_is_uhbr_rate(link_config.rate)) {
1977 int ret;
1978
1979 ret = intel_dp_mtp_tu_compute_config(intel_dp,
1980 pipe_config,
1981 conn_state,
1982 dsc_bpp_x16,
1983 dsc_bpp_x16,
1984 0, true);
1985 if (ret)
1986 continue;
1987 } else {
1988 unsigned long bw_overhead_flags =
1989 pipe_config->fec_enable ? DRM_DP_BW_OVERHEAD_FEC : 0;
1990 int line_slice_count =
1991 intel_dsc_line_slice_count(&pipe_config->dsc.slice_config);
1992
1993 if (!is_bw_sufficient_for_dsc_config(intel_dp,
1994 link_config.rate,
1995 link_config.lane_count,
1996 adjusted_mode->crtc_clock,
1997 adjusted_mode->hdisplay,
1998 line_slice_count,
1999 dsc_bpp_x16,
2000 bw_overhead_flags))
2001 continue;
2002 }
2003
2004 err = 0;
2005
2006 break;
2007 }
2008 intel_dp_link_caps_iter_end(&iter);
2009
2010 return err;
2011 }
2012
intel_dp_dsc_max_delta_bppx16(const struct intel_connector * connector,enum intel_output_format output_format)2013 static u16 intel_dp_dsc_max_delta_bppx16(const struct intel_connector *connector,
2014 enum intel_output_format output_format)
2015 {
2016 const u8 *dsc_dpcd = connector->dp.dsc_dpcd;
2017 u8 max_bpp_delta_v1 = dsc_dpcd[DP_DSC_MAX_BPP_DELTA_VERSION_1 - DP_DSC_SUPPORT];
2018 int max_bpp;
2019
2020 if (!(dsc_dpcd[DP_DSC_MAX_BITS_PER_PIXEL_HI - DP_DSC_SUPPORT] &
2021 DP_DSC_MAX_BPP_DELTA_AVAILABILITY))
2022 return 0;
2023
2024 switch (output_format) {
2025 case INTEL_OUTPUT_FORMAT_RGB:
2026 case INTEL_OUTPUT_FORMAT_YCBCR444:
2027 max_bpp = max_bpp_delta_v1 & DP_DSC_RGB_YCbCr444_MAX_BPP_DELTA_MASK;
2028 if (max_bpp >= 1 && max_bpp <= 21)
2029 max_bpp = max_bpp + DP_DSC_BPP_DELTA_444 - 1;
2030 else
2031 max_bpp = 0;
2032 break;
2033 case INTEL_OUTPUT_FORMAT_YCBCR420:
2034 max_bpp = (max_bpp_delta_v1 & DP_DSC_NATIVE_YCbCr420_MAX_BPP_DELTA_MASK) >>
2035 DP_DSC_BPP_DELTA_SHIFT_420;
2036 if (max_bpp >= 1 && max_bpp <= 7)
2037 max_bpp = max_bpp + DP_DSC_BPP_DELTA_420 - 1;
2038 break;
2039 default:
2040 MISSING_CASE(output_format);
2041 return 0;
2042 }
2043
2044 return max_bpp << 4;
2045 }
2046
2047 static
intel_dp_dsc_max_sink_compressed_bppx16(const struct intel_connector * connector,enum intel_output_format output_format,int bpc)2048 u16 intel_dp_dsc_max_sink_compressed_bppx16(const struct intel_connector *connector,
2049 enum intel_output_format output_format,
2050 int bpc)
2051 {
2052 u16 max_bppx16 = intel_dp_dsc_max_delta_bppx16(connector, output_format);
2053
2054 if (max_bppx16)
2055 return max_bppx16;
2056
2057 max_bppx16 = drm_edp_dsc_sink_output_bpp(connector->dp.dsc_dpcd);
2058
2059 if (max_bppx16)
2060 return max_bppx16;
2061 /*
2062 * If support not given in DPCD 67h, 68h, 6Eh, 6Fh use the Maximum Allowed bit rate
2063 * values as given in spec Table 2-157 DP v2.0
2064 */
2065 switch (output_format) {
2066 case INTEL_OUTPUT_FORMAT_RGB:
2067 case INTEL_OUTPUT_FORMAT_YCBCR444:
2068 return (3 * bpc) << 4;
2069 case INTEL_OUTPUT_FORMAT_YCBCR420:
2070 return (3 * (bpc / 2)) << 4;
2071 default:
2072 MISSING_CASE(output_format);
2073 break;
2074 }
2075
2076 return 0;
2077 }
2078
intel_dp_dsc_sink_min_compressed_bpp(enum intel_output_format output_format)2079 static int intel_dp_dsc_sink_min_compressed_bpp(enum intel_output_format output_format)
2080 {
2081 /* From Mandatory bit rate range Support Table 2-157 (DP v2.0) */
2082 switch (output_format) {
2083 case INTEL_OUTPUT_FORMAT_RGB:
2084 case INTEL_OUTPUT_FORMAT_YCBCR444:
2085 return 8;
2086 case INTEL_OUTPUT_FORMAT_YCBCR420:
2087 return 6;
2088 default:
2089 MISSING_CASE(output_format);
2090 break;
2091 }
2092
2093 return 0;
2094 }
2095
intel_dp_dsc_sink_max_compressed_bpp(const struct intel_connector * connector,enum intel_output_format output_format,int bpc)2096 static int intel_dp_dsc_sink_max_compressed_bpp(const struct intel_connector *connector,
2097 enum intel_output_format output_format,
2098 int bpc)
2099 {
2100 return intel_dp_dsc_max_sink_compressed_bppx16(connector,
2101 output_format, bpc) >> 4;
2102 }
2103
intel_dp_dsc_min_src_compressed_bpp(void)2104 int intel_dp_dsc_min_src_compressed_bpp(void)
2105 {
2106 /* Min Compressed bpp supported by source is 8 */
2107 return 8;
2108 }
2109
dsc_src_max_compressed_bpp(struct intel_dp * intel_dp)2110 static int dsc_src_max_compressed_bpp(struct intel_dp *intel_dp)
2111 {
2112 struct intel_display *display = to_intel_display(intel_dp);
2113
2114 /*
2115 * Forcing DSC and using the platform's max compressed bpp is seen to cause
2116 * underruns. Since DSC isn't needed in these cases, limit the
2117 * max compressed bpp to 18, which is a safe value across platforms with different
2118 * pipe bpps.
2119 */
2120 if (intel_dp->force_dsc_en)
2121 return 18;
2122
2123 /*
2124 * Max Compressed bpp for Gen 13+ is 27bpp.
2125 * For earlier platform is 23bpp. (Bspec:49259).
2126 */
2127 if (DISPLAY_VER(display) < 13)
2128 return 23;
2129 else
2130 return 27;
2131 }
2132
2133 /*
2134 * Note: for pre-13 display you still need to check the validity of each step.
2135 */
intel_dp_dsc_bpp_step_x16(const struct intel_connector * connector)2136 int intel_dp_dsc_bpp_step_x16(const struct intel_connector *connector)
2137 {
2138 struct intel_display *display = to_intel_display(connector);
2139 u8 incr = drm_dp_dsc_sink_bpp_incr(connector->dp.dsc_dpcd);
2140
2141 if (DISPLAY_VER(display) < 14 || !incr)
2142 return fxp_q4_from_int(1);
2143
2144 if (connector->mst.dp &&
2145 !connector->link.force_bpp_x16 && !connector->mst.dp->force_dsc_fractional_bpp_en)
2146 return fxp_q4_from_int(1);
2147
2148 /* fxp q4 */
2149 return fxp_q4_from_int(1) / incr;
2150 }
2151
2152 /*
2153 * Note: for bpp_x16 to be valid it must be also within the source/sink's
2154 * min..max bpp capability range.
2155 */
intel_dp_dsc_valid_compressed_bpp(struct intel_dp * intel_dp,int bpp_x16)2156 bool intel_dp_dsc_valid_compressed_bpp(struct intel_dp *intel_dp, int bpp_x16)
2157 {
2158 struct intel_display *display = to_intel_display(intel_dp);
2159
2160 if (DISPLAY_VER(display) >= 13) {
2161 if (intel_dp->force_dsc_fractional_bpp_en && !fxp_q4_to_frac(bpp_x16))
2162 return false;
2163
2164 return true;
2165 }
2166
2167 if (fxp_q4_to_frac(bpp_x16))
2168 return false;
2169
2170 return align_max_vesa_compressed_bpp_x16(bpp_x16) == bpp_x16;
2171 }
2172
align_min_compressed_bpp_x16(const struct intel_connector * connector,int min_bpp_x16)2173 static int align_min_compressed_bpp_x16(const struct intel_connector *connector, int min_bpp_x16)
2174 {
2175 struct intel_display *display = to_intel_display(connector);
2176
2177 if (DISPLAY_VER(display) >= 13) {
2178 int bpp_step_x16 = intel_dp_dsc_bpp_step_x16(connector);
2179
2180 drm_WARN_ON(display->drm, !is_power_of_2(bpp_step_x16));
2181
2182 return round_up(min_bpp_x16, bpp_step_x16);
2183 } else {
2184 return align_min_vesa_compressed_bpp_x16(min_bpp_x16);
2185 }
2186 }
2187
align_max_compressed_bpp_x16(const struct intel_connector * connector,enum intel_output_format output_format,int pipe_bpp,int max_bpp_x16)2188 static int align_max_compressed_bpp_x16(const struct intel_connector *connector,
2189 enum intel_output_format output_format,
2190 int pipe_bpp, int max_bpp_x16)
2191 {
2192 struct intel_display *display = to_intel_display(connector);
2193 int link_bpp_x16 = intel_dp_output_format_link_bpp_x16(output_format, pipe_bpp);
2194 int bpp_step_x16 = intel_dp_dsc_bpp_step_x16(connector);
2195
2196 max_bpp_x16 = min(max_bpp_x16, link_bpp_x16 - bpp_step_x16);
2197
2198 if (DISPLAY_VER(display) >= 13) {
2199 drm_WARN_ON(display->drm, !is_power_of_2(bpp_step_x16));
2200
2201 return round_down(max_bpp_x16, bpp_step_x16);
2202 } else {
2203 return align_max_vesa_compressed_bpp_x16(max_bpp_x16);
2204 }
2205 }
2206
2207 /*
2208 * Find the max compressed BPP we can find a link configuration for. The BPPs to
2209 * try depend on the source (platform) and sink.
2210 */
dsc_compute_compressed_bpp(struct intel_dp * intel_dp,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state,const struct link_config_limits * limits,int pipe_bpp)2211 static int dsc_compute_compressed_bpp(struct intel_dp *intel_dp,
2212 struct intel_crtc_state *pipe_config,
2213 struct drm_connector_state *conn_state,
2214 const struct link_config_limits *limits,
2215 int pipe_bpp)
2216 {
2217 struct intel_display *display = to_intel_display(intel_dp);
2218 struct intel_connector *connector = to_intel_connector(conn_state->connector);
2219 int min_bpp_x16, max_bpp_x16, bpp_step_x16;
2220 int bpp_x16;
2221 int ret;
2222
2223 min_bpp_x16 = limits->link.min_bpp_x16;
2224 max_bpp_x16 = limits->link.max_bpp_x16;
2225 bpp_step_x16 = intel_dp_dsc_bpp_step_x16(connector);
2226
2227 max_bpp_x16 = align_max_compressed_bpp_x16(connector, pipe_config->output_format,
2228 pipe_bpp, max_bpp_x16);
2229 if (intel_dp_is_edp(intel_dp)) {
2230 struct intel_dp_link_config max_link_config;
2231
2232 /*
2233 * FIXME: Clarify why eDP does not use the regular SST BW
2234 * check and instead always uses the maximum link config,
2235 * regardless of intel_dp::use_max_params. Then unify this eDP
2236 * path with the regular DP path.
2237 */
2238 if (!intel_dp_get_connector_max_link_config(connector, limits, &max_link_config))
2239 return -EINVAL;
2240
2241 pipe_config->port_clock = max_link_config.rate;
2242 pipe_config->lane_count = max_link_config.lane_count;
2243
2244 pipe_config->dsc.compressed_bpp_x16 = max_bpp_x16;
2245
2246 return 0;
2247 }
2248
2249 for (bpp_x16 = max_bpp_x16; bpp_x16 >= min_bpp_x16; bpp_x16 -= bpp_step_x16) {
2250 if (!intel_dp_dsc_valid_compressed_bpp(intel_dp, bpp_x16))
2251 continue;
2252
2253 ret = dsc_compute_link_config(intel_dp,
2254 pipe_config,
2255 conn_state,
2256 limits,
2257 bpp_x16);
2258 if (ret == 0) {
2259 pipe_config->dsc.compressed_bpp_x16 = bpp_x16;
2260 if (intel_dp->force_dsc_fractional_bpp_en &&
2261 fxp_q4_to_frac(bpp_x16))
2262 drm_dbg_kms(display->drm,
2263 "Forcing DSC fractional bpp\n");
2264
2265 return 0;
2266 }
2267 }
2268
2269 return -EINVAL;
2270 }
2271
intel_dp_dsc_min_src_input_bpc(void)2272 int intel_dp_dsc_min_src_input_bpc(void)
2273 {
2274 /* Min DSC Input BPC for ICL+ is 8 */
2275 return 8;
2276 }
2277
2278 static
is_dsc_pipe_bpp_sufficient(const struct link_config_limits * limits,int pipe_bpp)2279 bool is_dsc_pipe_bpp_sufficient(const struct link_config_limits *limits,
2280 int pipe_bpp)
2281 {
2282 return pipe_bpp >= limits->pipe.min_bpp &&
2283 pipe_bpp <= limits->pipe.max_bpp;
2284 }
2285
2286 static
intel_dp_force_dsc_pipe_bpp(struct intel_dp * intel_dp,const struct link_config_limits * limits)2287 int intel_dp_force_dsc_pipe_bpp(struct intel_dp *intel_dp,
2288 const struct link_config_limits *limits)
2289 {
2290 struct intel_display *display = to_intel_display(intel_dp);
2291 int forced_bpp;
2292
2293 if (!intel_dp->force_dsc_bpc)
2294 return 0;
2295
2296 forced_bpp = intel_dp->force_dsc_bpc * 3;
2297
2298 if (is_dsc_pipe_bpp_sufficient(limits, forced_bpp)) {
2299 drm_dbg_kms(display->drm, "Input DSC BPC forced to %d\n",
2300 intel_dp->force_dsc_bpc);
2301 return forced_bpp;
2302 }
2303
2304 drm_dbg_kms(display->drm,
2305 "Cannot force DSC BPC:%d, due to DSC BPC limits\n",
2306 intel_dp->force_dsc_bpc);
2307
2308 return 0;
2309 }
2310
intel_dp_dsc_compute_pipe_bpp(struct intel_dp * intel_dp,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state,const struct link_config_limits * limits)2311 static int intel_dp_dsc_compute_pipe_bpp(struct intel_dp *intel_dp,
2312 struct intel_crtc_state *pipe_config,
2313 struct drm_connector_state *conn_state,
2314 const struct link_config_limits *limits)
2315 {
2316 int forced_bpp, pipe_bpp;
2317 int ret;
2318
2319 forced_bpp = intel_dp_force_dsc_pipe_bpp(intel_dp, limits);
2320 if (forced_bpp)
2321 pipe_bpp = forced_bpp;
2322 else
2323 pipe_bpp = limits->pipe.max_bpp;
2324
2325 ret = dsc_compute_compressed_bpp(intel_dp, pipe_config, conn_state,
2326 limits, pipe_bpp);
2327 if (ret)
2328 return -EINVAL;
2329
2330 pipe_config->pipe_bpp = pipe_bpp;
2331
2332 return 0;
2333 }
2334
2335 /*
2336 * Return whether FEC must be enabled for 8b10b SST or MST links. On 128b132b
2337 * links FEC is always enabled implicitly by the HW, so this function returns
2338 * false for that case.
2339 */
intel_dp_needs_8b10b_fec(const struct intel_crtc_state * crtc_state,bool dsc_enabled_on_crtc)2340 bool intel_dp_needs_8b10b_fec(const struct intel_crtc_state *crtc_state,
2341 bool dsc_enabled_on_crtc)
2342 {
2343 if (intel_dp_is_uhbr(crtc_state))
2344 return false;
2345
2346 /*
2347 * Though eDP v1.5 supports FEC with DSC, unlike DP, it is optional.
2348 * Since, FEC is a bandwidth overhead, continue to not enable it for
2349 * eDP. Until, there is a good reason to do so.
2350 */
2351 if (intel_crtc_has_type(crtc_state, INTEL_OUTPUT_EDP))
2352 return false;
2353
2354 return dsc_enabled_on_crtc || intel_dsc_enabled_on_link(crtc_state);
2355 }
2356
intel_dp_dsc_reset_config(struct intel_crtc_state * crtc_state)2357 void intel_dp_dsc_reset_config(struct intel_crtc_state *crtc_state)
2358 {
2359 crtc_state->fec_enable = false;
2360
2361 crtc_state->dsc.compression_enable = false;
2362 crtc_state->dsc.compressed_bpp_x16 = 0;
2363
2364 memset(&crtc_state->dsc.slice_config, 0, sizeof(crtc_state->dsc.slice_config));
2365 memset(&crtc_state->dsc.config, 0, sizeof(crtc_state->dsc.config));
2366 }
2367
intel_dp_dsc_compute_config(struct intel_dp * intel_dp,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state,const struct link_config_limits * limits,int timeslots)2368 int intel_dp_dsc_compute_config(struct intel_dp *intel_dp,
2369 struct intel_crtc_state *pipe_config,
2370 struct drm_connector_state *conn_state,
2371 const struct link_config_limits *limits,
2372 int timeslots)
2373 {
2374 struct intel_display *display = to_intel_display(intel_dp);
2375 const struct intel_connector *connector =
2376 to_intel_connector(conn_state->connector);
2377 const struct drm_display_mode *adjusted_mode =
2378 &pipe_config->hw.adjusted_mode;
2379 int num_joined_pipes = intel_crtc_num_joined_pipes(pipe_config);
2380 bool is_mst = intel_crtc_has_type(pipe_config, INTEL_OUTPUT_DP_MST);
2381 int ret;
2382
2383 /*
2384 * FIXME: set the FEC enabled state once pipe_config->port_clock is
2385 * already known, so the UHBR/non-UHBR mode can be determined.
2386 */
2387 pipe_config->fec_enable = intel_dp_needs_8b10b_fec(pipe_config, true);
2388
2389 if (!intel_dp_dsc_supports_format(connector, pipe_config->output_format))
2390 return -EINVAL;
2391
2392 /*
2393 * Link parameters, pipe bpp and compressed bpp have already been
2394 * figured out for DP MST DSC.
2395 */
2396 if (!is_mst) {
2397 ret = intel_dp_dsc_compute_pipe_bpp(intel_dp, pipe_config,
2398 conn_state, limits);
2399 if (ret) {
2400 drm_dbg_kms(display->drm,
2401 "No Valid pipe bpp for given mode ret = %d\n", ret);
2402 return ret;
2403 }
2404 }
2405
2406 if (!intel_dp_dsc_get_slice_config(connector, adjusted_mode->crtc_clock,
2407 adjusted_mode->crtc_hdisplay, num_joined_pipes,
2408 &pipe_config->dsc.slice_config))
2409 return -EINVAL;
2410
2411 ret = intel_dp_dsc_compute_params(connector, pipe_config);
2412 if (ret < 0) {
2413 drm_dbg_kms(display->drm,
2414 "Cannot compute valid DSC parameters for Input Bpp = %d"
2415 "Compressed BPP = " FXP_Q4_FMT "\n",
2416 pipe_config->pipe_bpp,
2417 FXP_Q4_ARGS(pipe_config->dsc.compressed_bpp_x16));
2418 return ret;
2419 }
2420
2421 intel_dsc_enable_on_crtc(pipe_config);
2422
2423 drm_dbg_kms(display->drm, "DP DSC computed with Input Bpp = %d "
2424 "Compressed Bpp = " FXP_Q4_FMT " Slice Count = %d\n",
2425 pipe_config->pipe_bpp,
2426 FXP_Q4_ARGS(pipe_config->dsc.compressed_bpp_x16),
2427 intel_dsc_line_slice_count(&pipe_config->dsc.slice_config));
2428
2429 return 0;
2430 }
2431
2432 static int
dsc_throughput_quirk_max_bpp_x16(const struct intel_connector * connector,int mode_clock)2433 dsc_throughput_quirk_max_bpp_x16(const struct intel_connector *connector,
2434 int mode_clock)
2435 {
2436 if (!connector->dp.dsc_throughput_quirk)
2437 return INT_MAX;
2438
2439 /*
2440 * Synaptics Panamera branch devices have a problem decompressing a
2441 * stream with a compressed link-bpp higher than 12, if the pixel
2442 * clock is higher than ~50 % of the maximum overall throughput
2443 * reported by the branch device. Work around this by limiting the
2444 * maximum link bpp for such pixel clocks.
2445 *
2446 * TODO: Use the throughput value specific to the actual RGB/YUV
2447 * format of the output, after determining the pixel clock limit for
2448 * YUV modes. For now use the smaller of the throughput values, which
2449 * may result in limiting the link-bpp value already at a lower than
2450 * required mode clock in case of native YUV422/420 output formats.
2451 * The RGB/YUV444 throughput value should be always either equal or
2452 * smaller than the YUV422/420 value, but let's not depend on this
2453 * assumption.
2454 */
2455 if (mode_clock <
2456 min(connector->dp.dsc_branch_caps.overall_throughput.rgb_yuv444,
2457 connector->dp.dsc_branch_caps.overall_throughput.yuv422_420) / 2)
2458 return INT_MAX;
2459
2460 return fxp_q4_from_int(12);
2461 }
2462
intel_dp_compute_min_compressed_bpp_x16(struct intel_connector * connector,enum intel_output_format output_format)2463 int intel_dp_compute_min_compressed_bpp_x16(struct intel_connector *connector,
2464 enum intel_output_format output_format)
2465 {
2466 int dsc_src_min_bpp, dsc_sink_min_bpp, dsc_min_bpp;
2467 int min_bpp_x16;
2468
2469 dsc_src_min_bpp = intel_dp_dsc_min_src_compressed_bpp();
2470 dsc_sink_min_bpp = intel_dp_dsc_sink_min_compressed_bpp(output_format);
2471 dsc_min_bpp = max(dsc_src_min_bpp, dsc_sink_min_bpp);
2472
2473 min_bpp_x16 = fxp_q4_from_int(dsc_min_bpp);
2474
2475 min_bpp_x16 = align_min_compressed_bpp_x16(connector, min_bpp_x16);
2476
2477 return min_bpp_x16;
2478 }
2479
compute_max_compressed_bpp_x16(struct intel_connector * connector,int mode_clock,int mode_hdisplay,int num_joined_pipes,enum intel_output_format output_format,int pipe_max_bpp,int max_link_bpp_x16)2480 static int compute_max_compressed_bpp_x16(struct intel_connector *connector,
2481 int mode_clock, int mode_hdisplay,
2482 int num_joined_pipes,
2483 enum intel_output_format output_format,
2484 int pipe_max_bpp, int max_link_bpp_x16)
2485 {
2486 struct intel_display *display = to_intel_display(connector);
2487 struct intel_dp *intel_dp = intel_attached_dp(connector);
2488 int dsc_src_max_bpp, dsc_sink_max_bpp, dsc_max_bpp;
2489 int throughput_max_bpp_x16;
2490 int joiner_max_bpp;
2491
2492 dsc_src_max_bpp = dsc_src_max_compressed_bpp(intel_dp);
2493 joiner_max_bpp = get_max_compressed_bpp_with_joiner(display,
2494 mode_clock,
2495 mode_hdisplay,
2496 num_joined_pipes);
2497 dsc_sink_max_bpp = intel_dp_dsc_sink_max_compressed_bpp(connector,
2498 output_format,
2499 pipe_max_bpp / 3);
2500 dsc_max_bpp = min(dsc_sink_max_bpp, dsc_src_max_bpp);
2501 dsc_max_bpp = min(dsc_max_bpp, joiner_max_bpp);
2502
2503 max_link_bpp_x16 = min(max_link_bpp_x16, fxp_q4_from_int(dsc_max_bpp));
2504
2505 throughput_max_bpp_x16 = dsc_throughput_quirk_max_bpp_x16(connector,
2506 mode_clock);
2507 if (throughput_max_bpp_x16 < max_link_bpp_x16) {
2508 max_link_bpp_x16 = throughput_max_bpp_x16;
2509
2510 drm_dbg_kms(display->drm,
2511 "[CONNECTOR:%d:%s] Decreasing link max bpp to " FXP_Q4_FMT " due to DSC throughput quirk\n",
2512 connector->base.base.id, connector->base.name,
2513 FXP_Q4_ARGS(max_link_bpp_x16));
2514 }
2515
2516 max_link_bpp_x16 = align_max_compressed_bpp_x16(connector, output_format,
2517 pipe_max_bpp, max_link_bpp_x16);
2518
2519 return max_link_bpp_x16;
2520 }
2521
intel_dp_mode_valid_with_dsc(struct intel_connector * connector,int link_clock,int lane_count,int mode_clock,int mode_hdisplay,int num_joined_pipes,enum intel_output_format output_format,int pipe_bpp,unsigned long bw_overhead_flags)2522 bool intel_dp_mode_valid_with_dsc(struct intel_connector *connector,
2523 int link_clock, int lane_count,
2524 int mode_clock, int mode_hdisplay,
2525 int num_joined_pipes,
2526 enum intel_output_format output_format,
2527 int pipe_bpp, unsigned long bw_overhead_flags)
2528 {
2529 struct intel_dp *intel_dp = intel_attached_dp(connector);
2530 int min_bpp_x16 = intel_dp_compute_min_compressed_bpp_x16(connector,
2531 output_format);
2532 int max_bpp_x16 = compute_max_compressed_bpp_x16(connector,
2533 mode_clock, mode_hdisplay,
2534 num_joined_pipes,
2535 output_format,
2536 pipe_bpp, INT_MAX);
2537 int dsc_slice_count = intel_dp_dsc_get_slice_count(connector,
2538 mode_clock,
2539 mode_hdisplay,
2540 num_joined_pipes);
2541
2542 if (min_bpp_x16 <= 0 || min_bpp_x16 > max_bpp_x16)
2543 return false;
2544
2545 if (dsc_slice_count == 0)
2546 return false;
2547
2548 return is_bw_sufficient_for_dsc_config(intel_dp,
2549 link_clock, lane_count,
2550 mode_clock, mode_hdisplay,
2551 dsc_slice_count, min_bpp_x16,
2552 bw_overhead_flags);
2553 }
2554
2555 bool
intel_dp_get_connector_max_link_config(struct intel_connector * connector,const struct link_config_limits * limits,struct intel_dp_link_config * max_link_config)2556 intel_dp_get_connector_max_link_config(struct intel_connector *connector,
2557 const struct link_config_limits *limits,
2558 struct intel_dp_link_config *max_link_config)
2559 {
2560 struct intel_dp *intel_dp = intel_attached_dp(connector);
2561 struct intel_dp_link_caps *link_caps = intel_dp->link.caps;
2562 struct intel_dp_link_caps_order order =
2563 intel_dp_link_caps_connector_compute_order(connector);
2564
2565 return intel_dp_link_caps_get_max_config(link_caps, order.key, limits->link_config_filter,
2566 max_link_config);
2567 }
2568
2569 /*
2570 * Calculate the output link min, max bpp values in limits based on the pipe bpp
2571 * range, crtc_state and dsc mode. Return true on success.
2572 */
2573 static bool
intel_dp_compute_config_link_bpp_limits(struct intel_connector * connector,const struct intel_crtc_state * crtc_state,bool dsc,struct link_config_limits * limits)2574 intel_dp_compute_config_link_bpp_limits(struct intel_connector *connector,
2575 const struct intel_crtc_state *crtc_state,
2576 bool dsc,
2577 struct link_config_limits *limits)
2578 {
2579 struct intel_display *display = to_intel_display(connector);
2580 struct intel_dp *intel_dp = intel_attached_dp(connector);
2581 const struct drm_display_mode *adjusted_mode =
2582 &crtc_state->hw.adjusted_mode;
2583 const struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc);
2584 const struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
2585 struct intel_dp_link_config max_link_config;
2586 int max_link_bpp_x16;
2587
2588 max_link_bpp_x16 = min(crtc_state->max_link_bpp_x16,
2589 fxp_q4_from_int(limits->pipe.max_bpp));
2590
2591 if (!dsc) {
2592 max_link_bpp_x16 = rounddown(max_link_bpp_x16, fxp_q4_from_int(2 * 3));
2593
2594 if (max_link_bpp_x16 < fxp_q4_from_int(limits->pipe.min_bpp))
2595 return false;
2596
2597 limits->link.min_bpp_x16 = fxp_q4_from_int(limits->pipe.min_bpp);
2598 } else {
2599 limits->link.min_bpp_x16 =
2600 intel_dp_compute_min_compressed_bpp_x16(connector,
2601 crtc_state->output_format);
2602
2603 max_link_bpp_x16 =
2604 compute_max_compressed_bpp_x16(connector,
2605 adjusted_mode->crtc_clock,
2606 adjusted_mode->hdisplay,
2607 intel_crtc_num_joined_pipes(crtc_state),
2608 crtc_state->output_format,
2609 limits->pipe.max_bpp,
2610 max_link_bpp_x16);
2611 }
2612
2613 limits->link.max_bpp_x16 = max_link_bpp_x16;
2614
2615 if (!intel_dp_get_connector_max_link_config(connector, limits, &max_link_config))
2616 return false;
2617
2618 drm_dbg_kms(display->drm,
2619 "[ENCODER:%d:%s][CRTC:%d:%s] DP link limits: pixel clock %d kHz DSC %s max link %dx%d max pipe_bpp %d min link_bpp " FXP_Q4_FMT " max link_bpp " FXP_Q4_FMT "\n",
2620 encoder->base.base.id, encoder->base.name,
2621 crtc->base.base.id, crtc->base.name,
2622 adjusted_mode->crtc_clock,
2623 str_on_off(dsc),
2624 max_link_config.lane_count,
2625 max_link_config.rate,
2626 limits->pipe.max_bpp,
2627 FXP_Q4_ARGS(limits->link.min_bpp_x16),
2628 FXP_Q4_ARGS(limits->link.max_bpp_x16));
2629
2630 if (limits->link.min_bpp_x16 <= 0 ||
2631 limits->link.min_bpp_x16 > limits->link.max_bpp_x16)
2632 return false;
2633
2634 return true;
2635 }
2636
2637 static bool
intel_dp_dsc_compute_pipe_bpp_limits(struct intel_connector * connector,struct link_config_limits * limits)2638 intel_dp_dsc_compute_pipe_bpp_limits(struct intel_connector *connector,
2639 struct link_config_limits *limits)
2640 {
2641 struct intel_display *display = to_intel_display(connector);
2642 const struct link_config_limits orig_limits = *limits;
2643 int dsc_min_bpc = intel_dp_dsc_min_src_input_bpc();
2644 int dsc_max_bpc = intel_dp_dsc_max_src_input_bpc(display);
2645
2646 limits->pipe.min_bpp = max(limits->pipe.min_bpp, dsc_min_bpc * 3);
2647 limits->pipe.min_bpp = align_min_sink_dsc_input_bpp(connector, limits->pipe.min_bpp);
2648
2649 limits->pipe.max_bpp = min(limits->pipe.max_bpp, dsc_max_bpc * 3);
2650 limits->pipe.max_bpp = align_max_sink_dsc_input_bpp(connector, limits->pipe.max_bpp);
2651
2652 if (limits->pipe.min_bpp <= 0 ||
2653 limits->pipe.min_bpp > limits->pipe.max_bpp) {
2654 drm_dbg_kms(display->drm,
2655 "[CONNECTOR:%d:%s] Invalid DSC src/sink input BPP (src:%d-%d pipe:%d-%d sink-align:%d-%d)\n",
2656 connector->base.base.id, connector->base.name,
2657 dsc_min_bpc * 3, dsc_max_bpc * 3,
2658 orig_limits.pipe.min_bpp, orig_limits.pipe.max_bpp,
2659 limits->pipe.min_bpp, limits->pipe.max_bpp);
2660
2661 return false;
2662 }
2663
2664 return true;
2665 }
2666
2667 bool
intel_dp_compute_config_limits(struct intel_dp * intel_dp,struct drm_connector_state * conn_state,struct intel_crtc_state * crtc_state,bool respect_downstream_limits,bool dsc,struct link_config_limits * limits)2668 intel_dp_compute_config_limits(struct intel_dp *intel_dp,
2669 struct drm_connector_state *conn_state,
2670 struct intel_crtc_state *crtc_state,
2671 bool respect_downstream_limits,
2672 bool dsc,
2673 struct link_config_limits *limits)
2674 {
2675 struct intel_display *display = to_intel_display(intel_dp);
2676 struct intel_dp_link_caps *link_caps = intel_dp->link.caps;
2677 bool is_mst = intel_crtc_has_type(crtc_state, INTEL_OUTPUT_DP_MST);
2678 struct intel_connector *connector =
2679 to_intel_connector(conn_state->connector);
2680
2681 limits->link_config_filter = INTEL_DP_LINK_CAPS_FILTER_ALL;
2682
2683 limits->pipe.min_bpp = intel_dp_min_bpp(crtc_state->output_format);
2684 if (is_mst) {
2685 /*
2686 * FIXME: If all the streams can't fit into the link with their
2687 * current pipe_bpp we should reduce pipe_bpp across the board
2688 * until things start to fit. Until then we limit to <= 8bpc
2689 * since that's what was hardcoded for all MST streams
2690 * previously. This hack should be removed once we have the
2691 * proper retry logic in place.
2692 */
2693 limits->pipe.max_bpp = min(crtc_state->max_pipe_bpp, 24);
2694 } else {
2695 limits->pipe.max_bpp = intel_dp_max_bpp(intel_dp, crtc_state,
2696 respect_downstream_limits);
2697 }
2698
2699 if (!dsc && intel_dp_in_hdr_mode(conn_state)) {
2700 if (intel_dp_supports_dsc(intel_dp, connector, crtc_state) &&
2701 limits->pipe.max_bpp >= 30)
2702 limits->pipe.min_bpp = max(limits->pipe.min_bpp, 30);
2703 else
2704 drm_dbg_kms(display->drm,
2705 "[CONNECTOR:%d:%s] Can't force 30 bpp for HDR (pipe bpp: %d-%d DSC-support: %s)\n",
2706 connector->base.base.id, connector->base.name,
2707 limits->pipe.min_bpp, limits->pipe.max_bpp,
2708 str_yes_no(intel_dp_supports_dsc(intel_dp, connector,
2709 crtc_state)));
2710 }
2711
2712 /*
2713 * HDMI knows no 6 bpc transport format, and DSC with an at least
2714 * 8 bpc input provides a better output quality than a dithered
2715 * 6 bpc output. Prefer it for HDMI sinks, by failing the
2716 * uncompressed link config for modes which would fit only with a
2717 * 6 bpc pipe BPP. Honor a lower limit set via the max bpc
2718 * connector property.
2719 */
2720 if (!dsc && intel_dp_has_hdmi_sink(intel_dp) &&
2721 intel_dp_supports_dsc(intel_dp, connector, crtc_state) &&
2722 limits->pipe.max_bpp >= 24 &&
2723 crtc_state->pipe_bpp >= 24)
2724 limits->pipe.min_bpp = max(limits->pipe.min_bpp, 24);
2725
2726 if (limits->pipe.min_bpp <= 0 ||
2727 limits->pipe.min_bpp > limits->pipe.max_bpp) {
2728 drm_dbg_kms(display->drm, "[CONNECTOR:%d:%s] Invalid pipe bpp range: %d-%d\n",
2729 connector->base.base.id, connector->base.name,
2730 limits->pipe.min_bpp, limits->pipe.max_bpp);
2731
2732 return false;
2733 }
2734
2735 if (dsc && !intel_dp_dsc_compute_pipe_bpp_limits(connector, limits))
2736 return false;
2737
2738 /*
2739 * crtc_state->pipe_bpp is the non-DP specific baseline (platform /
2740 * EDID) maximum pipe BPP limited by the max-BPC connector property
2741 * request. Since by now pipe.max_bpp is <= the above baseline
2742 * maximum BPP, the only remaining reason for adjusting pipe.max_bpp
2743 * is the max-BPC connector property request. Adjust pipe.max_bpp to
2744 * this request within the current valid pipe.min_bpp .. pipe.max_bpp
2745 * range.
2746 */
2747 limits->pipe.max_bpp = clamp(crtc_state->pipe_bpp, limits->pipe.min_bpp,
2748 limits->pipe.max_bpp);
2749 if (dsc)
2750 limits->pipe.max_bpp = align_max_sink_dsc_input_bpp(connector,
2751 limits->pipe.max_bpp);
2752
2753 if (limits->pipe.max_bpp != crtc_state->pipe_bpp)
2754 drm_dbg_kms(display->drm,
2755 "[CONNECTOR:%d:%s] Adjusting requested max pipe bpp %d -> %d\n",
2756 connector->base.base.id, connector->base.name,
2757 crtc_state->pipe_bpp, limits->pipe.max_bpp);
2758
2759 if (is_mst || intel_dp->use_max_params) {
2760 struct intel_dp_link_caps_filter new_filter = INTEL_DP_LINK_CAPS_FILTER_NONE;
2761 struct intel_dp_link_config max_config;
2762
2763 /*
2764 * For MST we always configure max link bw - the spec doesn't
2765 * seem to suggest we should do otherwise.
2766 *
2767 * Use the maximum clock and number of lanes the eDP panel
2768 * advertizes being capable of in case the initial fast
2769 * optimal params failed us. The panels are generally
2770 * designed to support only a single clock and lane
2771 * configuration, and typically on older panels these
2772 * values correspond to the native resolution of the panel.
2773 */
2774 if (!intel_dp_get_connector_max_link_config(connector, limits, &max_config))
2775 return false;
2776
2777 if (!intel_dp_link_caps_filter_add(link_caps, &new_filter, &max_config))
2778 return false;
2779
2780 limits->link_config_filter = new_filter;
2781 }
2782
2783 if (!intel_dp_test_compute_config(connector, crtc_state, limits))
2784 return false;
2785
2786 return intel_dp_compute_config_link_bpp_limits(connector,
2787 crtc_state,
2788 dsc,
2789 limits);
2790 }
2791
intel_dp_config_required_rate(const struct intel_crtc_state * crtc_state)2792 int intel_dp_config_required_rate(const struct intel_crtc_state *crtc_state)
2793 {
2794 const struct drm_display_mode *adjusted_mode =
2795 &crtc_state->hw.adjusted_mode;
2796 int link_bpp_x16 = crtc_state->dsc.compression_enable ?
2797 crtc_state->dsc.compressed_bpp_x16 :
2798 fxp_q4_from_int(crtc_state->pipe_bpp);
2799
2800 return intel_dp_link_required(crtc_state->port_clock, crtc_state->lane_count,
2801 adjusted_mode->crtc_clock, adjusted_mode->hdisplay,
2802 link_bpp_x16, 0);
2803 }
2804
intel_dp_joiner_needs_dsc(struct intel_display * display,int num_joined_pipes)2805 bool intel_dp_joiner_needs_dsc(struct intel_display *display,
2806 int num_joined_pipes)
2807 {
2808 /*
2809 * Pipe joiner needs compression up to display 12 due to bandwidth
2810 * limitation. DG2 onwards pipe joiner can be enabled without
2811 * compression.
2812 * Ultrajoiner always needs compression.
2813 */
2814 return (!HAS_UNCOMPRESSED_JOINER(display) && num_joined_pipes == 2) ||
2815 num_joined_pipes == 4;
2816 }
2817
2818 static int
intel_dp_compute_link_for_joined_pipes(struct intel_encoder * encoder,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state,bool respect_downstream_limits)2819 intel_dp_compute_link_for_joined_pipes(struct intel_encoder *encoder,
2820 struct intel_crtc_state *pipe_config,
2821 struct drm_connector_state *conn_state,
2822 bool respect_downstream_limits)
2823 {
2824 struct intel_display *display = to_intel_display(encoder);
2825 int num_joined_pipes = intel_crtc_num_joined_pipes(pipe_config);
2826 struct intel_connector *connector =
2827 to_intel_connector(conn_state->connector);
2828 const struct drm_display_mode *adjusted_mode =
2829 &pipe_config->hw.adjusted_mode;
2830 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
2831 struct link_config_limits limits;
2832 bool dsc_needed, joiner_needs_dsc;
2833 int ret = 0;
2834
2835 intel_dp_dsc_reset_config(pipe_config);
2836
2837 joiner_needs_dsc = intel_dp_joiner_needs_dsc(display, num_joined_pipes);
2838
2839 dsc_needed = joiner_needs_dsc || intel_dp->force_dsc_en ||
2840 !intel_dp_compute_config_limits(intel_dp, conn_state, pipe_config,
2841 respect_downstream_limits,
2842 false,
2843 &limits);
2844
2845 if (!dsc_needed) {
2846 /*
2847 * Optimize for slow and wide for everything, because there are some
2848 * eDP 1.3 and 1.4 panels don't work well with fast and narrow.
2849 */
2850 ret = intel_dp_compute_link_config_wide(intel_dp, pipe_config,
2851 conn_state, &limits);
2852 if (!ret && intel_dp_is_uhbr(pipe_config))
2853 ret = intel_dp_mtp_tu_compute_config(intel_dp,
2854 pipe_config,
2855 conn_state,
2856 fxp_q4_from_int(pipe_config->pipe_bpp),
2857 fxp_q4_from_int(pipe_config->pipe_bpp),
2858 0, false);
2859
2860 if (ret ||
2861 !intel_dp_dotclk_valid(display,
2862 adjusted_mode->crtc_clock,
2863 adjusted_mode->crtc_htotal,
2864 0,
2865 num_joined_pipes))
2866 dsc_needed = true;
2867 }
2868
2869 if (dsc_needed && !intel_dp_supports_dsc(intel_dp, connector, pipe_config)) {
2870 drm_dbg_kms(display->drm, "DSC required but not available\n");
2871 return -EINVAL;
2872 }
2873
2874 if (dsc_needed) {
2875 int dsc_slice_count;
2876
2877 drm_dbg_kms(display->drm,
2878 "Try DSC (fallback=%s, joiner=%s, force=%s)\n",
2879 str_yes_no(ret), str_yes_no(joiner_needs_dsc),
2880 str_yes_no(intel_dp->force_dsc_en));
2881
2882 if (!intel_dp_compute_config_limits(intel_dp, conn_state, pipe_config,
2883 respect_downstream_limits,
2884 true,
2885 &limits))
2886 return -EINVAL;
2887
2888 ret = intel_dp_dsc_compute_config(intel_dp, pipe_config,
2889 conn_state, &limits, 64);
2890 if (ret < 0)
2891 return ret;
2892
2893 dsc_slice_count = intel_dsc_line_slice_count(&pipe_config->dsc.slice_config);
2894
2895 if (!intel_dp_dotclk_valid(display,
2896 adjusted_mode->crtc_clock,
2897 adjusted_mode->crtc_htotal,
2898 dsc_slice_count,
2899 num_joined_pipes))
2900 return -EINVAL;
2901 }
2902
2903 drm_dbg_kms(display->drm,
2904 "DP lane count %d clock %d bpp input %d compressed " FXP_Q4_FMT " HDR %s link rate required %d available %d\n",
2905 pipe_config->lane_count, pipe_config->port_clock,
2906 pipe_config->pipe_bpp,
2907 FXP_Q4_ARGS(pipe_config->dsc.compressed_bpp_x16),
2908 str_yes_no(intel_dp_in_hdr_mode(conn_state)),
2909 intel_dp_config_required_rate(pipe_config),
2910 intel_dp_max_link_data_rate(intel_dp,
2911 pipe_config->port_clock,
2912 pipe_config->lane_count));
2913
2914 return 0;
2915 }
2916
2917 static int
intel_dp_compute_link_config(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct drm_connector_state * conn_state,bool respect_downstream_limits)2918 intel_dp_compute_link_config(struct intel_encoder *encoder,
2919 struct intel_crtc_state *crtc_state,
2920 struct drm_connector_state *conn_state,
2921 bool respect_downstream_limits)
2922 {
2923 struct intel_crtc *crtc = to_intel_crtc(crtc_state->uapi.crtc);
2924 struct intel_connector *connector =
2925 to_intel_connector(conn_state->connector);
2926 const struct drm_display_mode *adjusted_mode =
2927 &crtc_state->hw.adjusted_mode;
2928 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
2929 int num_joined_pipes;
2930 int ret = -EINVAL;
2931
2932 if (crtc_state->fec_enable &&
2933 !intel_dp_supports_fec(intel_dp, connector, crtc_state))
2934 return -EINVAL;
2935
2936 for_each_joiner_candidate(connector, adjusted_mode, num_joined_pipes) {
2937 /*
2938 * NOTE:
2939 * The crtc_state->joiner_pipes should have been set at the end
2940 * only if all the conditions are met. However that would mean
2941 * that num_joined_pipes is passed around to all helpers and
2942 * make them use it instead of using crtc_state->joiner_pipes
2943 * directly or indirectly (via intel_crtc_num_joined_pipes()).
2944 *
2945 * For now, setting crtc_state->joiner_pipes to the candidate
2946 * value to avoid the above churn and resetting it to 0, in case
2947 * no joiner candidate is found to be suitable for the given
2948 * configuration.
2949 */
2950 if (num_joined_pipes > 1)
2951 crtc_state->joiner_pipes = GENMASK(crtc->pipe + num_joined_pipes - 1,
2952 crtc->pipe);
2953
2954 ret = intel_dp_compute_link_for_joined_pipes(encoder, crtc_state, conn_state,
2955 respect_downstream_limits);
2956 if (ret == 0 || ret == -EDEADLK)
2957 break;
2958 }
2959
2960 if (ret < 0)
2961 crtc_state->joiner_pipes = 0;
2962
2963 return ret;
2964 }
2965
intel_dp_limited_color_range(const struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)2966 bool intel_dp_limited_color_range(const struct intel_crtc_state *crtc_state,
2967 const struct drm_connector_state *conn_state)
2968 {
2969 const struct intel_digital_connector_state *intel_conn_state =
2970 to_intel_digital_connector_state(conn_state);
2971 const struct drm_display_mode *adjusted_mode =
2972 &crtc_state->hw.adjusted_mode;
2973
2974 /*
2975 * Our YCbCr output is always limited range.
2976 * crtc_state->limited_color_range only applies to RGB,
2977 * and it must never be set for YCbCr or we risk setting
2978 * some conflicting bits in TRANSCONF which will mess up
2979 * the colors on the monitor.
2980 */
2981 if (crtc_state->output_format != INTEL_OUTPUT_FORMAT_RGB)
2982 return false;
2983
2984 if (intel_conn_state->broadcast_rgb == INTEL_BROADCAST_RGB_AUTO) {
2985 /*
2986 * See:
2987 * CEA-861-E - 5.1 Default Encoding Parameters
2988 * VESA DisplayPort Ver.1.2a - 5.1.1.1 Video Colorimetry
2989 */
2990 return crtc_state->pipe_bpp != 18 &&
2991 drm_default_rgb_quant_range(adjusted_mode) ==
2992 HDMI_QUANTIZATION_RANGE_LIMITED;
2993 } else {
2994 return intel_conn_state->broadcast_rgb ==
2995 INTEL_BROADCAST_RGB_LIMITED;
2996 }
2997 }
2998
intel_dp_port_has_audio(struct intel_display * display,enum port port)2999 static bool intel_dp_port_has_audio(struct intel_display *display, enum port port)
3000 {
3001 if (display->platform.g4x)
3002 return false;
3003 if (DISPLAY_VER(display) < 12 && port == PORT_A)
3004 return false;
3005
3006 return true;
3007 }
3008
intel_dp_compute_vsc_colorimetry(const struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state,struct drm_dp_vsc_sdp * vsc)3009 static void intel_dp_compute_vsc_colorimetry(const struct intel_crtc_state *crtc_state,
3010 const struct drm_connector_state *conn_state,
3011 struct drm_dp_vsc_sdp *vsc)
3012 {
3013 struct intel_display *display = to_intel_display(crtc_state);
3014
3015 if (crtc_state->has_panel_replay) {
3016 /*
3017 * Prepare VSC Header for SU as per DP 2.0 spec, Table 2-223
3018 * VSC SDP supporting 3D stereo, Panel Replay, and Pixel
3019 * Encoding/Colorimetry Format indication.
3020 */
3021 vsc->revision = 0x7;
3022 } else {
3023 /*
3024 * Prepare VSC Header for SU as per DP 1.4 spec, Table 2-118
3025 * VSC SDP supporting 3D stereo, PSR2, and Pixel Encoding/
3026 * Colorimetry Format indication.
3027 */
3028 vsc->revision = 0x5;
3029 }
3030
3031 vsc->length = 0x13;
3032
3033 /* DP 1.4a spec, Table 2-120 */
3034 switch (crtc_state->output_format) {
3035 case INTEL_OUTPUT_FORMAT_YCBCR444:
3036 vsc->pixelformat = DP_PIXELFORMAT_YUV444;
3037 break;
3038 case INTEL_OUTPUT_FORMAT_YCBCR420:
3039 vsc->pixelformat = DP_PIXELFORMAT_YUV420;
3040 break;
3041 case INTEL_OUTPUT_FORMAT_RGB:
3042 default:
3043 vsc->pixelformat = DP_PIXELFORMAT_RGB;
3044 }
3045
3046 switch (conn_state->colorspace) {
3047 case DRM_MODE_COLORIMETRY_BT709_YCC:
3048 vsc->colorimetry = DP_COLORIMETRY_BT709_YCC;
3049 break;
3050 case DRM_MODE_COLORIMETRY_XVYCC_601:
3051 vsc->colorimetry = DP_COLORIMETRY_XVYCC_601;
3052 break;
3053 case DRM_MODE_COLORIMETRY_XVYCC_709:
3054 vsc->colorimetry = DP_COLORIMETRY_XVYCC_709;
3055 break;
3056 case DRM_MODE_COLORIMETRY_SYCC_601:
3057 vsc->colorimetry = DP_COLORIMETRY_SYCC_601;
3058 break;
3059 case DRM_MODE_COLORIMETRY_OPYCC_601:
3060 vsc->colorimetry = DP_COLORIMETRY_OPYCC_601;
3061 break;
3062 case DRM_MODE_COLORIMETRY_BT2020_CYCC:
3063 vsc->colorimetry = DP_COLORIMETRY_BT2020_CYCC;
3064 break;
3065 case DRM_MODE_COLORIMETRY_BT2020_RGB:
3066 vsc->colorimetry = DP_COLORIMETRY_BT2020_RGB;
3067 break;
3068 case DRM_MODE_COLORIMETRY_BT2020_YCC:
3069 vsc->colorimetry = DP_COLORIMETRY_BT2020_YCC;
3070 break;
3071 case DRM_MODE_COLORIMETRY_DCI_P3_RGB_D65:
3072 case DRM_MODE_COLORIMETRY_DCI_P3_RGB_THEATER:
3073 vsc->colorimetry = DP_COLORIMETRY_DCI_P3_RGB;
3074 break;
3075 default:
3076 /*
3077 * RGB->YCBCR color conversion uses the BT.709
3078 * color space.
3079 */
3080 if (crtc_state->output_format == INTEL_OUTPUT_FORMAT_YCBCR420)
3081 vsc->colorimetry = DP_COLORIMETRY_BT709_YCC;
3082 else
3083 vsc->colorimetry = DP_COLORIMETRY_DEFAULT;
3084 break;
3085 }
3086
3087 vsc->bpc = crtc_state->pipe_bpp / 3;
3088
3089 /* only RGB pixelformat supports 6 bpc */
3090 drm_WARN_ON(display->drm,
3091 vsc->bpc == 6 && vsc->pixelformat != DP_PIXELFORMAT_RGB);
3092
3093 /* All YCbCr formats are always limited range. */
3094 if (vsc->pixelformat == DP_PIXELFORMAT_RGB)
3095 vsc->dynamic_range = crtc_state->limited_color_range ?
3096 DP_DYNAMIC_RANGE_CTA : DP_DYNAMIC_RANGE_VESA;
3097 else
3098 vsc->dynamic_range = DP_DYNAMIC_RANGE_CTA;
3099
3100 vsc->content_type = DP_CONTENT_TYPE_NOT_DEFINED;
3101 }
3102
intel_dp_needs_as_sdp(struct intel_dp * intel_dp,struct intel_crtc_state * crtc_state)3103 static bool intel_dp_needs_as_sdp(struct intel_dp *intel_dp,
3104 struct intel_crtc_state *crtc_state)
3105 {
3106 if (!intel_dp->as_sdp_v2_supported)
3107 return false;
3108
3109 /*
3110 * #TODO: Add AS SDP v1 support for PCONs (DP branch devices).
3111 */
3112 if (drm_dp_is_branch(intel_dp->dpcd))
3113 return false;
3114
3115 if (intel_psr_needs_alpm_aux_less(intel_dp, crtc_state) &&
3116 !intel_psr_pr_async_video_timing_supported(intel_dp))
3117 return true;
3118
3119 return intel_vrr_possible(crtc_state);
3120 }
3121
intel_dp_compute_as_sdp(struct intel_dp * intel_dp,struct intel_crtc_state * crtc_state)3122 static void intel_dp_compute_as_sdp(struct intel_dp *intel_dp,
3123 struct intel_crtc_state *crtc_state)
3124 {
3125 struct drm_dp_as_sdp *as_sdp = &crtc_state->infoframes.as_sdp;
3126 const struct drm_display_mode *adjusted_mode =
3127 &crtc_state->hw.adjusted_mode;
3128
3129 /*
3130 * #FIXME: SDP/infoframe updates aren’t truly atomic, and with the new
3131 * cdclk->tc clock crossing we may transiently send a corrupted packet
3132 * if the update lands mid‑transmission.
3133 */
3134 if (!intel_dp_needs_as_sdp(intel_dp, crtc_state))
3135 return;
3136
3137 crtc_state->infoframes.enable |= intel_hdmi_infoframe_enable(DP_SDP_ADAPTIVE_SYNC);
3138
3139 as_sdp->sdp_type = DP_SDP_ADAPTIVE_SYNC;
3140 as_sdp->length = 0x9;
3141 as_sdp->duration_incr_ms = 0;
3142 as_sdp->revision = 0x2;
3143 as_sdp->vtotal = intel_vrr_vmin_vtotal(crtc_state);
3144
3145 if (crtc_state->cmrr.enable) {
3146 as_sdp->mode = DP_AS_SDP_FAVT_TRR_REACHED;
3147 as_sdp->target_rr = drm_mode_vrefresh(adjusted_mode);
3148 as_sdp->target_rr_divider = true;
3149 } else if (crtc_state->vrr.enable) {
3150 as_sdp->mode = DP_AS_SDP_AVT_DYNAMIC_VTOTAL;
3151 } else {
3152 as_sdp->mode = DP_AS_SDP_AVT_FIXED_VTOTAL;
3153 }
3154
3155 /*
3156 * For Panel Replay with Async Video Timing support, the source can
3157 * disable sending the AS SDP during PR Active state. In that case,
3158 * the sink needs the coasting vtotal value to maintain the refresh
3159 * rate. The HW only samples this on PR_ALPM_CTL[AS SDP Transmission
3160 * in Active Disable], which we never program, so providing the value
3161 * unconditionally when the sink advertises the capability is safe.
3162 *
3163 * #TODO:
3164 * If we ever advertise support for coasting at other refresh targets,
3165 * this logic could be revisited. For now, use the minimum refresh rate
3166 * as the only safe coasting value.
3167 */
3168 if (intel_psr_pr_async_video_timing_supported(intel_dp))
3169 as_sdp->coasting_vtotal = crtc_state->vrr.vmax;
3170 }
3171
intel_dp_compute_vsc_sdp(struct intel_dp * intel_dp,struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)3172 static void intel_dp_compute_vsc_sdp(struct intel_dp *intel_dp,
3173 struct intel_crtc_state *crtc_state,
3174 const struct drm_connector_state *conn_state)
3175 {
3176 struct drm_dp_vsc_sdp *vsc;
3177
3178 if (!intel_dp_needs_vsc_colorimetry(crtc_state, conn_state) &&
3179 !crtc_state->has_psr)
3180 return;
3181
3182 vsc = &crtc_state->infoframes.vsc;
3183
3184 crtc_state->infoframes.enable |= intel_hdmi_infoframe_enable(DP_SDP_VSC);
3185 vsc->sdp_type = DP_SDP_VSC;
3186
3187 if (intel_dp_needs_vsc_colorimetry(crtc_state, conn_state)) {
3188 intel_dp_compute_vsc_colorimetry(crtc_state, conn_state,
3189 vsc);
3190 } else if (crtc_state->has_panel_replay) {
3191 /*
3192 * [Panel Replay without colorimetry info]
3193 * Prepare VSC Header for SU as per DP 2.0 spec, Table 2-223
3194 * VSC SDP supporting 3D stereo + Panel Replay.
3195 */
3196 vsc->revision = 0x6;
3197 vsc->length = 0x10;
3198 } else if (crtc_state->has_sel_update) {
3199 /*
3200 * [PSR2 without colorimetry]
3201 * Prepare VSC Header for SU as per eDP 1.4 spec, Table 6-11
3202 * 3D stereo + PSR/PSR2 + Y-coordinate.
3203 */
3204 vsc->revision = 0x4;
3205 vsc->length = 0xe;
3206 } else {
3207 /*
3208 * [PSR1]
3209 * Prepare VSC Header for SU as per DP 1.4 spec, Table 2-118
3210 * VSC SDP supporting 3D stereo + PSR (applies to eDP v1.3 or
3211 * higher).
3212 */
3213 vsc->revision = 0x2;
3214 vsc->length = 0x8;
3215 }
3216 }
3217
3218 bool
intel_dp_in_hdr_mode(const struct drm_connector_state * conn_state)3219 intel_dp_in_hdr_mode(const struct drm_connector_state *conn_state)
3220 {
3221 struct hdr_output_metadata *hdr_metadata;
3222
3223 if (!conn_state->hdr_output_metadata)
3224 return false;
3225
3226 hdr_metadata = conn_state->hdr_output_metadata->data;
3227
3228 return hdr_metadata->hdmi_metadata_type1.eotf == HDMI_EOTF_SMPTE_ST2084;
3229 }
3230
3231 static void
intel_dp_compute_hdr_metadata_infoframe_sdp(struct intel_dp * intel_dp,struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)3232 intel_dp_compute_hdr_metadata_infoframe_sdp(struct intel_dp *intel_dp,
3233 struct intel_crtc_state *crtc_state,
3234 const struct drm_connector_state *conn_state)
3235 {
3236 struct intel_display *display = to_intel_display(intel_dp);
3237 int ret;
3238 struct hdmi_drm_infoframe *drm_infoframe = &crtc_state->infoframes.drm.drm;
3239
3240 if (!conn_state->hdr_output_metadata)
3241 return;
3242
3243 ret = drm_hdmi_infoframe_set_hdr_metadata(drm_infoframe, conn_state);
3244
3245 if (ret) {
3246 drm_dbg_kms(display->drm,
3247 "couldn't set HDR metadata in infoframe\n");
3248 return;
3249 }
3250
3251 crtc_state->infoframes.enable |=
3252 intel_hdmi_infoframe_enable(HDMI_PACKET_TYPE_GAMUT_METADATA);
3253 }
3254
can_enable_drrs(struct intel_connector * connector,const struct intel_crtc_state * pipe_config,const struct drm_display_mode * downclock_mode)3255 static bool can_enable_drrs(struct intel_connector *connector,
3256 const struct intel_crtc_state *pipe_config,
3257 const struct drm_display_mode *downclock_mode)
3258 {
3259 struct intel_display *display = to_intel_display(connector);
3260
3261 if (pipe_config->vrr.enable)
3262 return false;
3263
3264 /*
3265 * DRRS and PSR can't be enable together, so giving preference to PSR
3266 * as it allows more power-savings by complete shutting down display,
3267 * so to guarantee this, intel_drrs_compute_config() must be called
3268 * after intel_psr_compute_config().
3269 */
3270 if (pipe_config->has_psr)
3271 return false;
3272
3273 /* FIXME missing FDI M2/N2 etc. */
3274 if (pipe_config->has_pch_encoder)
3275 return false;
3276
3277 if (!intel_cpu_transcoder_has_drrs(display, pipe_config->cpu_transcoder))
3278 return false;
3279
3280 return downclock_mode &&
3281 intel_panel_drrs_type(connector) == DRRS_TYPE_SEAMLESS;
3282 }
3283
3284 static void
intel_dp_drrs_compute_config(struct intel_connector * connector,struct intel_crtc_state * pipe_config,int link_bpp_x16)3285 intel_dp_drrs_compute_config(struct intel_connector *connector,
3286 struct intel_crtc_state *pipe_config,
3287 int link_bpp_x16)
3288 {
3289 struct intel_display *display = to_intel_display(connector);
3290 const struct drm_display_mode *downclock_mode =
3291 intel_panel_downclock_mode(connector, &pipe_config->hw.adjusted_mode);
3292 int pixel_clock;
3293
3294 /*
3295 * FIXME all joined pipes share the same transcoder.
3296 * Need to account for that when updating M/N live.
3297 */
3298 if (has_seamless_m_n(connector) && !pipe_config->joiner_pipes)
3299 pipe_config->update_m_n = true;
3300
3301 if (!can_enable_drrs(connector, pipe_config, downclock_mode)) {
3302 if (intel_cpu_transcoder_has_m2_n2(display, pipe_config->cpu_transcoder))
3303 intel_zero_m_n(&pipe_config->dp_m2_n2);
3304 return;
3305 }
3306
3307 if (display->platform.ironlake || display->platform.sandybridge ||
3308 display->platform.ivybridge)
3309 pipe_config->msa_timing_delay = connector->panel.vbt.edp.drrs_msa_timing_delay;
3310
3311 pipe_config->has_drrs = true;
3312
3313 pixel_clock = downclock_mode->clock;
3314 if (pipe_config->splitter.enable)
3315 pixel_clock /= pipe_config->splitter.link_count;
3316
3317 intel_link_compute_m_n(link_bpp_x16, pipe_config->lane_count, pixel_clock,
3318 pipe_config->port_clock,
3319 intel_dp_bw_fec_overhead(pipe_config->fec_enable),
3320 &pipe_config->dp_m2_n2);
3321
3322 /* FIXME: abstract this better */
3323 if (pipe_config->splitter.enable)
3324 pipe_config->dp_m2_n2.data_m *= pipe_config->splitter.link_count;
3325 }
3326
intel_dp_has_audio(struct intel_encoder * encoder,const struct drm_connector_state * conn_state)3327 static bool intel_dp_has_audio(struct intel_encoder *encoder,
3328 const struct drm_connector_state *conn_state)
3329 {
3330 struct intel_display *display = to_intel_display(encoder);
3331 const struct intel_digital_connector_state *intel_conn_state =
3332 to_intel_digital_connector_state(conn_state);
3333 struct intel_connector *connector =
3334 to_intel_connector(conn_state->connector);
3335
3336 if (!intel_dp_port_has_audio(display, encoder->port))
3337 return false;
3338
3339 if (intel_conn_state->force_audio == HDMI_AUDIO_AUTO)
3340 return connector->base.display_info.has_audio;
3341 else
3342 return intel_conn_state->force_audio == HDMI_AUDIO_ON;
3343 }
3344
3345 static int
intel_dp_compute_output_format(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct drm_connector_state * conn_state,bool respect_downstream_limits,enum intel_output_format sink_format)3346 intel_dp_compute_output_format(struct intel_encoder *encoder,
3347 struct intel_crtc_state *crtc_state,
3348 struct drm_connector_state *conn_state,
3349 bool respect_downstream_limits,
3350 enum intel_output_format sink_format)
3351 {
3352 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
3353 struct intel_connector *connector = intel_dp->attached_connector;
3354 const struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
3355
3356 if (intel_dp_sink_format_valid(connector, adjusted_mode,
3357 sink_format) != MODE_OK)
3358 return -EINVAL;
3359
3360 crtc_state->sink_format = sink_format;
3361 crtc_state->output_format = intel_dp_output_format(connector, crtc_state->sink_format);
3362
3363 return intel_dp_compute_link_config(encoder, crtc_state, conn_state,
3364 respect_downstream_limits);
3365 }
3366
3367 static int
intel_dp_compute_formats(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct drm_connector_state * conn_state,bool respect_downstream_limits)3368 intel_dp_compute_formats(struct intel_encoder *encoder,
3369 struct intel_crtc_state *crtc_state,
3370 struct drm_connector_state *conn_state,
3371 bool respect_downstream_limits)
3372 {
3373 struct intel_display *display = to_intel_display(encoder);
3374 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
3375 struct intel_connector *connector = intel_dp->attached_connector;
3376 const struct drm_display_info *info = &connector->base.display_info;
3377 const struct drm_display_mode *adjusted_mode = &crtc_state->hw.adjusted_mode;
3378 int ret;
3379
3380 if (drm_mode_is_420_only(info, adjusted_mode)) {
3381 ret = intel_dp_compute_output_format(encoder, crtc_state, conn_state,
3382 respect_downstream_limits,
3383 INTEL_OUTPUT_FORMAT_YCBCR420);
3384
3385 if (ret && !respect_downstream_limits) {
3386 drm_dbg_kms(display->drm,
3387 "YCbCr 4:2:0 mode but YCbCr 4:2:0 output not possible. Falling back to RGB.\n");
3388
3389 ret = intel_dp_compute_output_format(encoder, crtc_state, conn_state,
3390 respect_downstream_limits,
3391 INTEL_OUTPUT_FORMAT_RGB);
3392 }
3393 } else {
3394 ret = intel_dp_compute_output_format(encoder, crtc_state, conn_state,
3395 respect_downstream_limits,
3396 INTEL_OUTPUT_FORMAT_RGB);
3397
3398 if (ret && drm_mode_is_420_also(info, adjusted_mode))
3399 ret = intel_dp_compute_output_format(encoder, crtc_state, conn_state,
3400 respect_downstream_limits,
3401 INTEL_OUTPUT_FORMAT_YCBCR420);
3402 }
3403
3404 return ret;
3405 }
3406
3407 void
intel_dp_audio_compute_config(struct intel_encoder * encoder,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state)3408 intel_dp_audio_compute_config(struct intel_encoder *encoder,
3409 struct intel_crtc_state *pipe_config,
3410 struct drm_connector_state *conn_state)
3411 {
3412 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
3413
3414 pipe_config->has_audio =
3415 intel_dp_has_audio(encoder, conn_state) &&
3416 intel_audio_compute_config(encoder, pipe_config, conn_state);
3417
3418 pipe_config->sdp_split_enable = pipe_config->has_audio &&
3419 intel_dp_is_uhbr(pipe_config);
3420
3421 /*
3422 * SDP splitting for UHBR audio requires explicit sink capability in
3423 * SST mode, whereas in MST mode it is inherently supported.
3424 */
3425 if (pipe_config->sdp_split_enable &&
3426 !intel_crtc_has_type(pipe_config, INTEL_OUTPUT_DP_MST))
3427 pipe_config->sdp_split_enable = intel_dp->sst_split_sdp_support;
3428 }
3429
3430 void
intel_dp_queue_modeset_retry_for_link(struct intel_atomic_state * state,struct intel_encoder * encoder,const struct intel_crtc_state * crtc_state)3431 intel_dp_queue_modeset_retry_for_link(struct intel_atomic_state *state,
3432 struct intel_encoder *encoder,
3433 const struct intel_crtc_state *crtc_state)
3434 {
3435 struct intel_connector *connector;
3436 struct intel_digital_connector_state *conn_state;
3437 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
3438 int i;
3439
3440 if (intel_dp->needs_modeset_retry)
3441 return;
3442
3443 intel_dp->needs_modeset_retry = true;
3444
3445 if (!intel_crtc_has_type(crtc_state, INTEL_OUTPUT_DP_MST)) {
3446 intel_connector_queue_modeset_retry_work(intel_dp->attached_connector);
3447
3448 return;
3449 }
3450
3451 for_each_new_intel_connector_in_state(state, connector, conn_state, i) {
3452 if (!conn_state->base.crtc)
3453 continue;
3454
3455 if (connector->mst.dp == intel_dp)
3456 intel_connector_queue_modeset_retry_work(connector);
3457 }
3458 }
3459
intel_dp_compute_min_hblank(struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)3460 int intel_dp_compute_min_hblank(struct intel_crtc_state *crtc_state,
3461 const struct drm_connector_state *conn_state)
3462 {
3463 struct intel_display *display = to_intel_display(crtc_state);
3464 const struct drm_display_mode *adjusted_mode =
3465 &crtc_state->hw.adjusted_mode;
3466 struct intel_connector *connector = to_intel_connector(conn_state->connector);
3467 int symbol_size = intel_dp_is_uhbr(crtc_state) ? 32 : 8;
3468 /*
3469 * min symbol cycles is 3(BS,VBID, BE) for 128b/132b and
3470 * 5(BS, VBID, MVID, MAUD, BE) for 8b/10b
3471 */
3472 int min_sym_cycles = intel_dp_is_uhbr(crtc_state) ? 3 : 5;
3473 bool is_mst = intel_crtc_has_type(crtc_state, INTEL_OUTPUT_DP_MST);
3474 int num_joined_pipes = intel_crtc_num_joined_pipes(crtc_state);
3475 int min_hblank;
3476 int max_lane_count = 4;
3477 int hactive_sym_cycles, htotal_sym_cycles;
3478 int dsc_slices = 0;
3479 int link_bpp_x16;
3480
3481 if (DISPLAY_VER(display) < 30)
3482 return 0;
3483
3484 /* MIN_HBLANK should be set only for 8b/10b MST or for 128b/132b SST/MST */
3485 if (!is_mst && !intel_dp_is_uhbr(crtc_state))
3486 return 0;
3487
3488 if (crtc_state->dsc.compression_enable) {
3489 dsc_slices = intel_dp_dsc_get_slice_count(connector,
3490 adjusted_mode->crtc_clock,
3491 adjusted_mode->crtc_hdisplay,
3492 num_joined_pipes);
3493 if (!dsc_slices) {
3494 drm_dbg(display->drm, "failed to calculate dsc slice count\n");
3495 return -EINVAL;
3496 }
3497 }
3498
3499 if (crtc_state->dsc.compression_enable)
3500 link_bpp_x16 = crtc_state->dsc.compressed_bpp_x16;
3501 else
3502 link_bpp_x16 = intel_dp_output_format_link_bpp_x16(crtc_state->output_format,
3503 crtc_state->pipe_bpp);
3504
3505 /* Calculate min Hblank Link Layer Symbol Cycle Count for 8b/10b MST & 128b/132b */
3506 hactive_sym_cycles = drm_dp_link_symbol_cycles(max_lane_count,
3507 adjusted_mode->hdisplay,
3508 dsc_slices,
3509 link_bpp_x16,
3510 symbol_size, is_mst);
3511 htotal_sym_cycles = adjusted_mode->htotal * hactive_sym_cycles /
3512 adjusted_mode->hdisplay;
3513
3514 min_hblank = htotal_sym_cycles - hactive_sym_cycles;
3515 /* minimum Hblank calculation: https://groups.vesa.org/wg/DP/document/20494 */
3516 min_hblank = max(min_hblank, min_sym_cycles);
3517
3518 /*
3519 * adjust the BlankingStart/BlankingEnd framing control from
3520 * the calculated value
3521 */
3522 min_hblank = min_hblank - 2;
3523
3524 /*
3525 * min_hblank formula is undergoing a change, to avoid underrun use the
3526 * recomended value in spec to compare with the calculated one and use the
3527 * minimum value
3528 */
3529 if (intel_dp_is_uhbr(crtc_state)) {
3530 /*
3531 * Note: Bspec requires a min_hblank of 2 for YCBCR420
3532 * with compressed bpp 6, but the minimum compressed bpp
3533 * supported by the driver is 8.
3534 */
3535 drm_WARN_ON(display->drm,
3536 (crtc_state->dsc.compression_enable &&
3537 crtc_state->output_format == INTEL_OUTPUT_FORMAT_YCBCR420 &&
3538 crtc_state->dsc.compressed_bpp_x16 < fxp_q4_from_int(8)));
3539 min_hblank = min(3, min_hblank);
3540 } else {
3541 min_hblank = min(10, min_hblank);
3542 }
3543
3544 crtc_state->min_hblank = min_hblank;
3545
3546 return 0;
3547 }
3548
3549 int
intel_dp_compute_config(struct intel_atomic_state * state,struct intel_encoder * encoder,struct intel_crtc_state * pipe_config,struct drm_connector_state * conn_state)3550 intel_dp_compute_config(struct intel_atomic_state *state,
3551 struct intel_encoder *encoder,
3552 struct intel_crtc_state *pipe_config,
3553 struct drm_connector_state *conn_state)
3554 {
3555 struct intel_display *display = to_intel_display(encoder);
3556 struct drm_display_mode *adjusted_mode = &pipe_config->hw.adjusted_mode;
3557 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
3558 struct intel_connector *connector = intel_dp->attached_connector;
3559 int ret = 0, link_bpp_x16;
3560
3561 if (intel_dp_is_edp(intel_dp)) {
3562 ret = intel_panel_compute_config(state, pipe_config, connector);
3563 if (ret)
3564 return ret;
3565 }
3566
3567 if (adjusted_mode->flags & DRM_MODE_FLAG_DBLSCAN)
3568 return -EINVAL;
3569
3570 if (!connector->base.interlace_allowed &&
3571 adjusted_mode->flags & DRM_MODE_FLAG_INTERLACE)
3572 return -EINVAL;
3573
3574 if (adjusted_mode->flags & DRM_MODE_FLAG_DBLCLK)
3575 return -EINVAL;
3576
3577 if (intel_dp_hdisplay_bad(display, adjusted_mode->crtc_hdisplay))
3578 return -EINVAL;
3579
3580 /*
3581 * Try to respect downstream TMDS clock limits first, if
3582 * that fails assume the user might know something we don't.
3583 */
3584 ret = intel_dp_compute_formats(encoder, pipe_config, conn_state, true);
3585 if (ret)
3586 ret = intel_dp_compute_formats(encoder, pipe_config, conn_state, false);
3587 if (ret)
3588 return ret;
3589
3590 ret = intel_pfit_compute_config(pipe_config, conn_state);
3591 if (ret)
3592 return ret;
3593
3594 pipe_config->limited_color_range =
3595 intel_dp_limited_color_range(pipe_config, conn_state);
3596
3597 if (intel_dp_is_uhbr(pipe_config)) {
3598 /* 128b/132b SST also needs this */
3599 pipe_config->mst_master_transcoder = pipe_config->cpu_transcoder;
3600 } else {
3601 pipe_config->enhanced_framing =
3602 drm_dp_enhanced_frame_cap(intel_dp->dpcd);
3603 }
3604
3605 if (pipe_config->dsc.compression_enable)
3606 link_bpp_x16 = pipe_config->dsc.compressed_bpp_x16;
3607 else
3608 link_bpp_x16 = intel_dp_output_format_link_bpp_x16(pipe_config->output_format,
3609 pipe_config->pipe_bpp);
3610
3611 if (intel_dp->mso_link_count) {
3612 int n = intel_dp->mso_link_count;
3613 int overlap = intel_dp->mso_pixel_overlap;
3614
3615 pipe_config->splitter.enable = true;
3616 pipe_config->splitter.link_count = n;
3617 pipe_config->splitter.pixel_overlap = overlap;
3618
3619 drm_dbg_kms(display->drm,
3620 "MSO link count %d, pixel overlap %d\n",
3621 n, overlap);
3622
3623 adjusted_mode->crtc_hdisplay = adjusted_mode->crtc_hdisplay / n + overlap;
3624 adjusted_mode->crtc_hblank_start = adjusted_mode->crtc_hblank_start / n + overlap;
3625 adjusted_mode->crtc_hblank_end = adjusted_mode->crtc_hblank_end / n + overlap;
3626 adjusted_mode->crtc_hsync_start = adjusted_mode->crtc_hsync_start / n + overlap;
3627 adjusted_mode->crtc_hsync_end = adjusted_mode->crtc_hsync_end / n + overlap;
3628 adjusted_mode->crtc_htotal = adjusted_mode->crtc_htotal / n + overlap;
3629 adjusted_mode->crtc_clock /= n;
3630 }
3631
3632 intel_dp_audio_compute_config(encoder, pipe_config, conn_state);
3633
3634 if (!intel_dp_is_uhbr(pipe_config)) {
3635 intel_link_compute_m_n(link_bpp_x16,
3636 pipe_config->lane_count,
3637 adjusted_mode->crtc_clock,
3638 pipe_config->port_clock,
3639 intel_dp_bw_fec_overhead(pipe_config->fec_enable),
3640 &pipe_config->dp_m_n);
3641 }
3642
3643 ret = intel_dp_compute_min_hblank(pipe_config, conn_state);
3644 if (ret)
3645 return ret;
3646
3647 /* FIXME: abstract this better */
3648 if (pipe_config->splitter.enable)
3649 pipe_config->dp_m_n.data_m *= pipe_config->splitter.link_count;
3650
3651 intel_vrr_compute_config(pipe_config, conn_state);
3652 intel_psr_compute_config(intel_dp, pipe_config, conn_state);
3653 intel_dp_compute_as_sdp(intel_dp, pipe_config);
3654 intel_alpm_lobf_compute_config(intel_dp, pipe_config, conn_state);
3655 intel_dp_drrs_compute_config(connector, pipe_config, link_bpp_x16);
3656 intel_dp_compute_vsc_sdp(intel_dp, pipe_config, conn_state);
3657 intel_dp_compute_hdr_metadata_infoframe_sdp(intel_dp, pipe_config, conn_state);
3658
3659 return intel_dp_tunnel_atomic_compute_stream_bw(state, intel_dp, connector,
3660 pipe_config);
3661 }
3662
intel_dp_set_link_params(struct intel_dp * intel_dp,int link_rate,int lane_count)3663 void intel_dp_set_link_params(struct intel_dp *intel_dp,
3664 int link_rate, int lane_count)
3665 {
3666 memset(intel_dp->train_set, 0, sizeof(intel_dp->train_set));
3667 intel_dp->link.active = false;
3668 intel_dp->needs_modeset_retry = false;
3669 intel_dp->link_rate = link_rate;
3670 intel_dp->lane_count = lane_count;
3671 }
3672
intel_dp_reset_link_params(struct intel_dp * intel_dp)3673 void intel_dp_reset_link_params(struct intel_dp *intel_dp)
3674 {
3675 /*
3676 * TODO: Remove the following reset of link capabilities, as
3677 * this isn't needed after intel_dp_link_caps_update(reset=true)
3678 * was called.
3679 */
3680 intel_dp_link_caps_reset(intel_dp->link.caps);
3681 intel_dp_tunnel_uhbr_lanes_wa_apply(intel_dp);
3682
3683 intel_dp->link.mst_probed_lane_count = 0;
3684 intel_dp->link.mst_probed_rate = 0;
3685 intel_dp_link_training_reset(intel_dp->link.training);
3686 }
3687
3688 /* Enable backlight PWM and backlight PP control. */
intel_edp_backlight_on(const struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)3689 void intel_edp_backlight_on(const struct intel_crtc_state *crtc_state,
3690 const struct drm_connector_state *conn_state)
3691 {
3692 struct intel_display *display = to_intel_display(crtc_state);
3693 struct intel_dp *intel_dp = enc_to_intel_dp(to_intel_encoder(conn_state->best_encoder));
3694
3695 if (!intel_dp_is_edp(intel_dp))
3696 return;
3697
3698 drm_dbg_kms(display->drm, "\n");
3699
3700 intel_backlight_enable(crtc_state, conn_state);
3701 intel_pps_backlight_on(intel_dp);
3702 }
3703
3704 /* Disable backlight PP control and backlight PWM. */
intel_edp_backlight_off(const struct drm_connector_state * old_conn_state)3705 void intel_edp_backlight_off(const struct drm_connector_state *old_conn_state)
3706 {
3707 struct intel_dp *intel_dp = enc_to_intel_dp(to_intel_encoder(old_conn_state->best_encoder));
3708 struct intel_display *display = to_intel_display(intel_dp);
3709
3710 if (!intel_dp_is_edp(intel_dp))
3711 return;
3712
3713 drm_dbg_kms(display->drm, "\n");
3714
3715 intel_pps_backlight_off(intel_dp);
3716 intel_backlight_disable(old_conn_state);
3717 }
3718
downstream_hpd_needs_d0(struct intel_dp * intel_dp)3719 static bool downstream_hpd_needs_d0(struct intel_dp *intel_dp)
3720 {
3721 /*
3722 * DPCD 1.2+ should support BRANCH_DEVICE_CTRL, and thus
3723 * be capable of signalling downstream hpd with a long pulse.
3724 * Whether or not that means D3 is safe to use is not clear,
3725 * but let's assume so until proven otherwise.
3726 *
3727 * FIXME should really check all downstream ports...
3728 */
3729 return intel_dp->dpcd[DP_DPCD_REV] == 0x11 &&
3730 drm_dp_is_branch(intel_dp->dpcd) &&
3731 intel_dp->downstream_ports[0] & DP_DS_PORT_HPD;
3732 }
3733
3734 static int
write_dsc_decompression_flag(struct drm_dp_aux * aux,u8 flag,bool set)3735 write_dsc_decompression_flag(struct drm_dp_aux *aux, u8 flag, bool set)
3736 {
3737 int err;
3738 u8 val;
3739
3740 err = drm_dp_dpcd_readb(aux, DP_DSC_ENABLE, &val);
3741 if (err < 0)
3742 return err;
3743
3744 if (set)
3745 val |= flag;
3746 else
3747 val &= ~flag;
3748
3749 return drm_dp_dpcd_writeb(aux, DP_DSC_ENABLE, val);
3750 }
3751
3752 static void
intel_dp_sink_set_dsc_decompression(struct intel_connector * connector,bool enable)3753 intel_dp_sink_set_dsc_decompression(struct intel_connector *connector,
3754 bool enable)
3755 {
3756 struct intel_display *display = to_intel_display(connector);
3757
3758 if (write_dsc_decompression_flag(connector->dp.dsc_decompression_aux,
3759 DP_DECOMPRESSION_EN, enable) < 0)
3760 drm_dbg_kms(display->drm,
3761 "Failed to %s sink decompression state\n",
3762 str_enable_disable(enable));
3763 }
3764
3765 static void
intel_dp_sink_set_dsc_passthrough(const struct intel_connector * connector,bool enable)3766 intel_dp_sink_set_dsc_passthrough(const struct intel_connector *connector,
3767 bool enable)
3768 {
3769 struct intel_display *display = to_intel_display(connector);
3770 struct drm_dp_aux *aux = connector->mst.port ?
3771 connector->mst.port->passthrough_aux : NULL;
3772
3773 if (!aux)
3774 return;
3775
3776 if (write_dsc_decompression_flag(aux,
3777 DP_DSC_PASSTHROUGH_EN, enable) < 0)
3778 drm_dbg_kms(display->drm,
3779 "Failed to %s sink compression passthrough state\n",
3780 str_enable_disable(enable));
3781 }
3782
intel_dp_dsc_aux_ref_count(struct intel_atomic_state * state,const struct intel_connector * connector,bool for_get_ref)3783 static int intel_dp_dsc_aux_ref_count(struct intel_atomic_state *state,
3784 const struct intel_connector *connector,
3785 bool for_get_ref)
3786 {
3787 struct intel_display *display = to_intel_display(state);
3788 struct drm_connector *_connector_iter;
3789 struct drm_connector_state *old_conn_state;
3790 struct drm_connector_state *new_conn_state;
3791 int ref_count = 0;
3792 int i;
3793
3794 /*
3795 * On SST the decompression AUX device won't be shared, each connector
3796 * uses for this its own AUX targeting the sink device.
3797 */
3798 if (!connector->mst.dp)
3799 return connector->dp.dsc_decompression_enabled ? 1 : 0;
3800
3801 for_each_oldnew_connector_in_state(&state->base, _connector_iter,
3802 old_conn_state, new_conn_state, i) {
3803 const struct intel_connector *
3804 connector_iter = to_intel_connector(_connector_iter);
3805
3806 if (connector_iter->mst.dp != connector->mst.dp)
3807 continue;
3808
3809 if (!connector_iter->dp.dsc_decompression_enabled)
3810 continue;
3811
3812 drm_WARN_ON(display->drm,
3813 (for_get_ref && !new_conn_state->crtc) ||
3814 (!for_get_ref && !old_conn_state->crtc));
3815
3816 if (connector_iter->dp.dsc_decompression_aux ==
3817 connector->dp.dsc_decompression_aux)
3818 ref_count++;
3819 }
3820
3821 return ref_count;
3822 }
3823
intel_dp_dsc_aux_get_ref(struct intel_atomic_state * state,struct intel_connector * connector)3824 static bool intel_dp_dsc_aux_get_ref(struct intel_atomic_state *state,
3825 struct intel_connector *connector)
3826 {
3827 bool ret = intel_dp_dsc_aux_ref_count(state, connector, true) == 0;
3828
3829 connector->dp.dsc_decompression_enabled = true;
3830
3831 return ret;
3832 }
3833
intel_dp_dsc_aux_put_ref(struct intel_atomic_state * state,struct intel_connector * connector)3834 static bool intel_dp_dsc_aux_put_ref(struct intel_atomic_state *state,
3835 struct intel_connector *connector)
3836 {
3837 connector->dp.dsc_decompression_enabled = false;
3838
3839 return intel_dp_dsc_aux_ref_count(state, connector, false) == 0;
3840 }
3841
3842 /**
3843 * intel_dp_sink_enable_decompression - Enable DSC decompression in sink/last branch device
3844 * @state: atomic state
3845 * @connector: connector to enable the decompression for
3846 * @new_crtc_state: new state for the CRTC driving @connector
3847 *
3848 * Enable the DSC decompression if required in the %DP_DSC_ENABLE DPCD
3849 * register of the appropriate sink/branch device. On SST this is always the
3850 * sink device, whereas on MST based on each device's DSC capabilities it's
3851 * either the last branch device (enabling decompression in it) or both the
3852 * last branch device (enabling passthrough in it) and the sink device
3853 * (enabling decompression in it).
3854 */
intel_dp_sink_enable_decompression(struct intel_atomic_state * state,struct intel_connector * connector,const struct intel_crtc_state * new_crtc_state)3855 void intel_dp_sink_enable_decompression(struct intel_atomic_state *state,
3856 struct intel_connector *connector,
3857 const struct intel_crtc_state *new_crtc_state)
3858 {
3859 struct intel_display *display = to_intel_display(state);
3860
3861 if (!new_crtc_state->dsc.compression_enable)
3862 return;
3863
3864 if (drm_WARN_ON(display->drm,
3865 !connector->dp.dsc_decompression_aux ||
3866 connector->dp.dsc_decompression_enabled))
3867 return;
3868
3869 if (!intel_dp_dsc_aux_get_ref(state, connector))
3870 return;
3871
3872 intel_dp_sink_set_dsc_passthrough(connector, true);
3873 intel_dp_sink_set_dsc_decompression(connector, true);
3874 }
3875
3876 /**
3877 * intel_dp_sink_disable_decompression - Disable DSC decompression in sink/last branch device
3878 * @state: atomic state
3879 * @connector: connector to disable the decompression for
3880 * @old_crtc_state: old state for the CRTC driving @connector
3881 *
3882 * Disable the DSC decompression if required in the %DP_DSC_ENABLE DPCD
3883 * register of the appropriate sink/branch device, corresponding to the
3884 * sequence in intel_dp_sink_enable_decompression().
3885 */
intel_dp_sink_disable_decompression(struct intel_atomic_state * state,struct intel_connector * connector,const struct intel_crtc_state * old_crtc_state)3886 void intel_dp_sink_disable_decompression(struct intel_atomic_state *state,
3887 struct intel_connector *connector,
3888 const struct intel_crtc_state *old_crtc_state)
3889 {
3890 struct intel_display *display = to_intel_display(state);
3891
3892 if (!old_crtc_state->dsc.compression_enable)
3893 return;
3894
3895 if (drm_WARN_ON(display->drm,
3896 !connector->dp.dsc_decompression_aux ||
3897 !connector->dp.dsc_decompression_enabled))
3898 return;
3899
3900 if (!intel_dp_dsc_aux_put_ref(state, connector))
3901 return;
3902
3903 intel_dp_sink_set_dsc_decompression(connector, false);
3904 intel_dp_sink_set_dsc_passthrough(connector, false);
3905 }
3906
3907 static void
intel_dp_init_source_oui(struct intel_dp * intel_dp)3908 intel_dp_init_source_oui(struct intel_dp *intel_dp)
3909 {
3910 struct intel_display *display = to_intel_display(intel_dp);
3911 u8 oui[] = { 0x00, 0xaa, 0x01 };
3912 u8 buf[3] = {};
3913
3914 if (READ_ONCE(intel_dp->oui_valid))
3915 return;
3916
3917 WRITE_ONCE(intel_dp->oui_valid, true);
3918
3919 /*
3920 * During driver init, we want to be careful and avoid changing the source OUI if it's
3921 * already set to what we want, so as to avoid clearing any state by accident
3922 */
3923 if (drm_dp_dpcd_read(&intel_dp->aux, DP_SOURCE_OUI, buf, sizeof(buf)) < 0)
3924 drm_dbg_kms(display->drm, "Failed to read source OUI\n");
3925
3926 if (memcmp(oui, buf, sizeof(oui)) == 0) {
3927 /* Assume the OUI was written now. */
3928 intel_dp->last_oui_write = jiffies;
3929 return;
3930 }
3931
3932 if (drm_dp_dpcd_write(&intel_dp->aux, DP_SOURCE_OUI, oui, sizeof(oui)) < 0) {
3933 drm_dbg_kms(display->drm, "Failed to write source OUI\n");
3934 WRITE_ONCE(intel_dp->oui_valid, false);
3935 }
3936
3937 intel_dp->last_oui_write = jiffies;
3938 }
3939
intel_dp_invalidate_source_oui(struct intel_dp * intel_dp)3940 void intel_dp_invalidate_source_oui(struct intel_dp *intel_dp)
3941 {
3942 WRITE_ONCE(intel_dp->oui_valid, false);
3943 }
3944
intel_dp_wait_source_oui(struct intel_dp * intel_dp)3945 void intel_dp_wait_source_oui(struct intel_dp *intel_dp)
3946 {
3947 struct intel_display *display = to_intel_display(intel_dp);
3948 struct intel_connector *connector = intel_dp->attached_connector;
3949
3950 drm_dbg_kms(display->drm,
3951 "[CONNECTOR:%d:%s] Performing OUI wait (%u ms)\n",
3952 connector->base.base.id, connector->base.name,
3953 connector->panel.vbt.backlight.hdr_dpcd_refresh_timeout);
3954
3955 wait_remaining_ms_from_jiffies(intel_dp->last_oui_write,
3956 connector->panel.vbt.backlight.hdr_dpcd_refresh_timeout);
3957 }
3958
3959 /* If the device supports it, try to set the power state appropriately */
intel_dp_set_power(struct intel_dp * intel_dp,u8 mode)3960 void intel_dp_set_power(struct intel_dp *intel_dp, u8 mode)
3961 {
3962 struct intel_display *display = to_intel_display(intel_dp);
3963 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
3964 int ret, i;
3965
3966 /* Should have a valid DPCD by this point */
3967 if (intel_dp->dpcd[DP_DPCD_REV] < 0x11)
3968 return;
3969
3970 if (mode != DP_SET_POWER_D0) {
3971 if (downstream_hpd_needs_d0(intel_dp))
3972 return;
3973
3974 ret = drm_dp_dpcd_writeb(&intel_dp->aux, DP_SET_POWER, mode);
3975 } else {
3976 struct intel_digital_port *dig_port = dp_to_dig_port(intel_dp);
3977
3978 intel_lspcon_resume(dig_port);
3979
3980 /* Write the source OUI as early as possible */
3981 intel_dp_init_source_oui(intel_dp);
3982
3983 /*
3984 * When turning on, we need to retry for 1ms to give the sink
3985 * time to wake up.
3986 */
3987 for (i = 0; i < 3; i++) {
3988 ret = drm_dp_dpcd_writeb(&intel_dp->aux, DP_SET_POWER, mode);
3989 if (ret == 1)
3990 break;
3991 msleep(1);
3992 }
3993
3994 if (ret == 1 && intel_lspcon_active(dig_port))
3995 intel_lspcon_wait_pcon_mode(dig_port);
3996 }
3997
3998 if (ret != 1)
3999 drm_dbg_kms(display->drm,
4000 "[ENCODER:%d:%s] Set power to %s failed\n",
4001 encoder->base.base.id, encoder->base.name,
4002 mode == DP_SET_POWER_D0 ? "D0" : "D3");
4003 }
4004
4005 static bool
4006 intel_dp_get_dpcd(struct intel_dp *intel_dp);
4007
4008 /**
4009 * intel_dp_sync_state - sync the encoder state during init/resume
4010 * @encoder: intel encoder to sync
4011 * @crtc_state: state for the CRTC connected to the encoder
4012 *
4013 * Sync any state stored in the encoder wrt. HW state during driver init
4014 * and system resume.
4015 */
intel_dp_sync_state(struct intel_encoder * encoder,const struct intel_crtc_state * crtc_state)4016 void intel_dp_sync_state(struct intel_encoder *encoder,
4017 const struct intel_crtc_state *crtc_state)
4018 {
4019 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
4020 bool dpcd_updated = false;
4021
4022 /*
4023 * Don't clobber DPCD if it's been already read out during output
4024 * setup (eDP) or detect.
4025 */
4026 if (crtc_state && intel_dp->dpcd[DP_DPCD_REV] == 0) {
4027 intel_dp_get_dpcd(intel_dp);
4028 dpcd_updated = true;
4029 }
4030
4031 intel_dp_tunnel_resume(intel_dp, crtc_state, dpcd_updated);
4032
4033 if (crtc_state) {
4034 intel_dp_reset_link_params(intel_dp);
4035 intel_dp_set_link_params(intel_dp, crtc_state->port_clock, crtc_state->lane_count);
4036 intel_dp->link.active = true;
4037 }
4038 }
4039
intel_dp_initial_fastset_check(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state)4040 bool intel_dp_initial_fastset_check(struct intel_encoder *encoder,
4041 struct intel_crtc_state *crtc_state)
4042 {
4043 struct intel_display *display = to_intel_display(encoder);
4044 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
4045 bool fastset = true;
4046
4047 /*
4048 * If BIOS has set an unsupported or non-standard link rate for some
4049 * reason force an encoder recompute and full modeset.
4050 */
4051 if (intel_dp_rate_index(intel_dp->source_rates, intel_dp->num_source_rates,
4052 crtc_state->port_clock) < 0) {
4053 drm_dbg_kms(display->drm,
4054 "[ENCODER:%d:%s] Forcing full modeset due to unsupported link rate\n",
4055 encoder->base.base.id, encoder->base.name);
4056 crtc_state->uapi.connectors_changed = true;
4057 fastset = false;
4058 }
4059
4060 /*
4061 * FIXME hack to force full modeset when DSC is being used.
4062 *
4063 * As long as we do not have full state readout and config comparison
4064 * of crtc_state->dsc, we have no way to ensure reliable fastset.
4065 * Remove once we have readout for DSC.
4066 */
4067 if (crtc_state->dsc.compression_enable) {
4068 drm_dbg_kms(display->drm,
4069 "[ENCODER:%d:%s] Forcing full modeset due to DSC being enabled\n",
4070 encoder->base.base.id, encoder->base.name);
4071 crtc_state->uapi.mode_changed = true;
4072 fastset = false;
4073 }
4074
4075 if (CAN_PANEL_REPLAY(intel_dp)) {
4076 drm_dbg_kms(display->drm,
4077 "[ENCODER:%d:%s] Forcing full modeset to compute panel replay state\n",
4078 encoder->base.base.id, encoder->base.name);
4079 crtc_state->uapi.mode_changed = true;
4080 fastset = false;
4081 }
4082
4083 return fastset;
4084 }
4085
intel_dp_get_pcon_dsc_cap(struct intel_dp * intel_dp)4086 static void intel_dp_get_pcon_dsc_cap(struct intel_dp *intel_dp)
4087 {
4088 struct intel_display *display = to_intel_display(intel_dp);
4089
4090 /* Clear the cached register set to avoid using stale values */
4091
4092 memset(intel_dp->pcon_dsc_dpcd, 0, sizeof(intel_dp->pcon_dsc_dpcd));
4093
4094 if (!drm_dp_is_branch(intel_dp->dpcd))
4095 return;
4096
4097 if (drm_dp_dpcd_read(&intel_dp->aux, DP_PCON_DSC_ENCODER,
4098 intel_dp->pcon_dsc_dpcd,
4099 sizeof(intel_dp->pcon_dsc_dpcd)) < 0)
4100 drm_err(display->drm, "Failed to read DPCD register 0x%x\n",
4101 DP_PCON_DSC_ENCODER);
4102
4103 drm_dbg_kms(display->drm, "PCON ENCODER DSC DPCD: %*ph\n",
4104 (int)sizeof(intel_dp->pcon_dsc_dpcd), intel_dp->pcon_dsc_dpcd);
4105 }
4106
intel_dp_pcon_get_frl_mask(u8 frl_bw_mask)4107 static int intel_dp_pcon_get_frl_mask(u8 frl_bw_mask)
4108 {
4109 static const int bw_gbps[] = {9, 18, 24, 32, 40, 48};
4110 int i;
4111
4112 for (i = ARRAY_SIZE(bw_gbps) - 1; i >= 0; i--) {
4113 if (frl_bw_mask & (1 << i))
4114 return bw_gbps[i];
4115 }
4116 return 0;
4117 }
4118
intel_dp_pcon_set_frl_mask(int max_frl)4119 static int intel_dp_pcon_set_frl_mask(int max_frl)
4120 {
4121 switch (max_frl) {
4122 case 48:
4123 return DP_PCON_FRL_BW_MASK_48GBPS;
4124 case 40:
4125 return DP_PCON_FRL_BW_MASK_40GBPS;
4126 case 32:
4127 return DP_PCON_FRL_BW_MASK_32GBPS;
4128 case 24:
4129 return DP_PCON_FRL_BW_MASK_24GBPS;
4130 case 18:
4131 return DP_PCON_FRL_BW_MASK_18GBPS;
4132 case 9:
4133 return DP_PCON_FRL_BW_MASK_9GBPS;
4134 }
4135
4136 return 0;
4137 }
4138
intel_dp_hdmi_sink_max_frl(struct intel_dp * intel_dp)4139 static int intel_dp_hdmi_sink_max_frl(struct intel_dp *intel_dp)
4140 {
4141 struct intel_connector *connector = intel_dp->attached_connector;
4142 const struct drm_display_info *info = &connector->base.display_info;
4143 int max_frl_rate;
4144 int max_lanes, rate_per_lane;
4145 int max_dsc_lanes, dsc_rate_per_lane;
4146
4147 max_lanes = info->hdmi.max_lanes;
4148 rate_per_lane = info->hdmi.max_frl_rate_per_lane;
4149 max_frl_rate = max_lanes * rate_per_lane;
4150
4151 /*
4152 * The sink's DSC max FRL rate only applies to compressed video
4153 * transport, which requires a DSC 1.2 encoder in the PCON. Without
4154 * one the HDMI link always carries uncompressed video, for which
4155 * the regular max FRL rate is the limit.
4156 */
4157 if (drm_dp_pcon_enc_is_dsc_1_2(intel_dp->pcon_dsc_dpcd) &&
4158 info->hdmi.dsc_cap.v_1p2) {
4159 max_dsc_lanes = info->hdmi.dsc_cap.max_lanes;
4160 dsc_rate_per_lane = info->hdmi.dsc_cap.max_frl_rate_per_lane;
4161 if (max_dsc_lanes && dsc_rate_per_lane)
4162 max_frl_rate = min(max_frl_rate, max_dsc_lanes * dsc_rate_per_lane);
4163 }
4164
4165 return max_frl_rate;
4166 }
4167
4168 static bool
intel_dp_pcon_is_frl_trained(struct intel_dp * intel_dp,u8 max_frl_bw_mask,u8 * frl_trained_mask)4169 intel_dp_pcon_is_frl_trained(struct intel_dp *intel_dp,
4170 u8 max_frl_bw_mask, u8 *frl_trained_mask)
4171 {
4172 if (drm_dp_pcon_hdmi_link_active(&intel_dp->aux) &&
4173 drm_dp_pcon_hdmi_link_mode(&intel_dp->aux, frl_trained_mask) == DP_PCON_HDMI_MODE_FRL &&
4174 *frl_trained_mask >= max_frl_bw_mask)
4175 return true;
4176
4177 return false;
4178 }
4179
intel_dp_pcon_start_frl_training(struct intel_dp * intel_dp)4180 static int intel_dp_pcon_start_frl_training(struct intel_dp *intel_dp)
4181 {
4182 struct intel_display *display = to_intel_display(intel_dp);
4183 #define TIMEOUT_FRL_READY_MS 500
4184 #define TIMEOUT_HDMI_LINK_ACTIVE_MS 1000
4185 int max_frl_bw, max_pcon_frl_bw, max_edid_frl_bw, ret;
4186 u8 max_frl_bw_mask = 0, frl_trained_mask;
4187 bool is_active;
4188
4189 max_pcon_frl_bw = intel_dp->dfp.pcon_max_frl_bw;
4190 drm_dbg(display->drm, "PCON max rate = %d Gbps\n", max_pcon_frl_bw);
4191
4192 max_edid_frl_bw = intel_dp_hdmi_sink_max_frl(intel_dp);
4193 drm_dbg(display->drm, "Sink max rate from EDID = %d Gbps\n",
4194 max_edid_frl_bw);
4195
4196 max_frl_bw = min(max_edid_frl_bw, max_pcon_frl_bw);
4197
4198 if (max_frl_bw <= 0)
4199 return -EINVAL;
4200
4201 max_frl_bw_mask = intel_dp_pcon_set_frl_mask(max_frl_bw);
4202 drm_dbg(display->drm, "MAX_FRL_BW_MASK = %u\n", max_frl_bw_mask);
4203
4204 if (intel_dp_pcon_is_frl_trained(intel_dp, max_frl_bw_mask, &frl_trained_mask))
4205 goto frl_trained;
4206
4207 ret = drm_dp_pcon_frl_prepare(&intel_dp->aux, false);
4208 if (ret < 0)
4209 return ret;
4210 /* Wait for PCON to be FRL Ready */
4211 ret = poll_timeout_us(is_active = drm_dp_pcon_is_frl_ready(&intel_dp->aux),
4212 is_active,
4213 1000, TIMEOUT_FRL_READY_MS * 1000, false);
4214 if (ret)
4215 return ret;
4216
4217 ret = drm_dp_pcon_frl_configure_1(&intel_dp->aux, max_frl_bw,
4218 DP_PCON_ENABLE_SEQUENTIAL_LINK);
4219 if (ret < 0)
4220 return ret;
4221 ret = drm_dp_pcon_frl_configure_2(&intel_dp->aux, max_frl_bw_mask,
4222 DP_PCON_FRL_LINK_TRAIN_NORMAL);
4223 if (ret < 0)
4224 return ret;
4225 ret = drm_dp_pcon_frl_enable(&intel_dp->aux);
4226 if (ret < 0)
4227 return ret;
4228 /*
4229 * Wait for FRL to be completed
4230 * Check if the HDMI Link is up and active.
4231 */
4232 ret = poll_timeout_us(is_active = intel_dp_pcon_is_frl_trained(intel_dp, max_frl_bw_mask, &frl_trained_mask),
4233 is_active,
4234 1000, TIMEOUT_HDMI_LINK_ACTIVE_MS * 1000, false);
4235 if (ret)
4236 return ret;
4237
4238 frl_trained:
4239 drm_dbg(display->drm, "FRL_TRAINED_MASK = %u\n", frl_trained_mask);
4240 intel_dp->frl.trained_rate_gbps = intel_dp_pcon_get_frl_mask(frl_trained_mask);
4241 intel_dp->frl.is_trained = true;
4242 drm_dbg(display->drm, "FRL trained with : %d Gbps\n",
4243 intel_dp->frl.trained_rate_gbps);
4244
4245 return 0;
4246 }
4247
intel_dp_is_hdmi_2_1_sink(struct intel_dp * intel_dp)4248 static bool intel_dp_is_hdmi_2_1_sink(struct intel_dp *intel_dp)
4249 {
4250 if (drm_dp_is_branch(intel_dp->dpcd) &&
4251 intel_dp_has_hdmi_sink(intel_dp) &&
4252 intel_dp_hdmi_sink_max_frl(intel_dp) > 0)
4253 return true;
4254
4255 return false;
4256 }
4257
4258 static
intel_dp_pcon_set_tmds_mode(struct intel_dp * intel_dp)4259 int intel_dp_pcon_set_tmds_mode(struct intel_dp *intel_dp)
4260 {
4261 int ret;
4262 u8 buf = 0;
4263
4264 /* Set PCON source control mode */
4265 buf |= DP_PCON_ENABLE_SOURCE_CTL_MODE;
4266
4267 ret = drm_dp_dpcd_writeb(&intel_dp->aux, DP_PCON_HDMI_LINK_CONFIG_1, buf);
4268 if (ret < 0)
4269 return ret;
4270
4271 /* Set HDMI LINK ENABLE */
4272 buf |= DP_PCON_ENABLE_HDMI_LINK;
4273 ret = drm_dp_dpcd_writeb(&intel_dp->aux, DP_PCON_HDMI_LINK_CONFIG_1, buf);
4274 if (ret < 0)
4275 return ret;
4276
4277 return 0;
4278 }
4279
intel_dp_check_frl_training(struct intel_dp * intel_dp)4280 void intel_dp_check_frl_training(struct intel_dp *intel_dp)
4281 {
4282 struct intel_display *display = to_intel_display(intel_dp);
4283
4284 /*
4285 * Always go for FRL training if:
4286 * -PCON supports SRC_CTL_MODE (VESA DP2.0-HDMI2.1 PCON Spec Draft-1 Sec-7)
4287 * -sink is HDMI2.1
4288 */
4289 if (!(intel_dp->downstream_ports[2] & DP_PCON_SOURCE_CTL_MODE) ||
4290 !intel_dp_is_hdmi_2_1_sink(intel_dp) ||
4291 intel_dp->frl.is_trained)
4292 return;
4293
4294 if (intel_dp_pcon_start_frl_training(intel_dp) < 0) {
4295 int ret, mode;
4296
4297 drm_dbg(display->drm,
4298 "Couldn't set FRL mode, continuing with TMDS mode\n");
4299 ret = intel_dp_pcon_set_tmds_mode(intel_dp);
4300 mode = drm_dp_pcon_hdmi_link_mode(&intel_dp->aux, NULL);
4301
4302 if (ret < 0 || mode != DP_PCON_HDMI_MODE_TMDS)
4303 drm_dbg(display->drm,
4304 "Issue with PCON, cannot set TMDS mode\n");
4305 } else {
4306 drm_dbg(display->drm, "FRL training Completed\n");
4307 }
4308 }
4309
4310 static int
intel_dp_pcon_dsc_enc_slice_height(const struct intel_crtc_state * crtc_state)4311 intel_dp_pcon_dsc_enc_slice_height(const struct intel_crtc_state *crtc_state)
4312 {
4313 int vactive = crtc_state->hw.adjusted_mode.vdisplay;
4314
4315 return intel_hdmi_dsc_get_slice_height(vactive);
4316 }
4317
4318 static int
intel_dp_pcon_dsc_enc_slices(struct intel_dp * intel_dp,const struct intel_crtc_state * crtc_state)4319 intel_dp_pcon_dsc_enc_slices(struct intel_dp *intel_dp,
4320 const struct intel_crtc_state *crtc_state)
4321 {
4322 struct intel_connector *connector = intel_dp->attached_connector;
4323 const struct drm_display_info *info = &connector->base.display_info;
4324 int hdmi_throughput = info->hdmi.dsc_cap.clk_per_slice;
4325 int hdmi_max_slices = info->hdmi.dsc_cap.max_slices;
4326 int pcon_max_slices = drm_dp_pcon_dsc_max_slices(intel_dp->pcon_dsc_dpcd);
4327 int pcon_max_slice_width = drm_dp_pcon_dsc_max_slice_width(intel_dp->pcon_dsc_dpcd);
4328
4329 return intel_hdmi_dsc_get_num_slices(crtc_state, pcon_max_slices,
4330 pcon_max_slice_width,
4331 hdmi_max_slices, hdmi_throughput);
4332 }
4333
4334 static int
intel_dp_pcon_dsc_enc_bpp(struct intel_dp * intel_dp,const struct intel_crtc_state * crtc_state,int num_slices,int slice_width)4335 intel_dp_pcon_dsc_enc_bpp(struct intel_dp *intel_dp,
4336 const struct intel_crtc_state *crtc_state,
4337 int num_slices, int slice_width)
4338 {
4339 struct intel_connector *connector = intel_dp->attached_connector;
4340 const struct drm_display_info *info = &connector->base.display_info;
4341 int output_format = crtc_state->output_format;
4342 bool hdmi_all_bpp = info->hdmi.dsc_cap.all_bpp;
4343 int pcon_fractional_bpp = drm_dp_pcon_dsc_bpp_incr(intel_dp->pcon_dsc_dpcd);
4344 int hdmi_max_chunk_bytes =
4345 info->hdmi.dsc_cap.total_chunk_kbytes * 1024;
4346
4347 return intel_hdmi_dsc_get_bpp(pcon_fractional_bpp, slice_width,
4348 num_slices, output_format, hdmi_all_bpp,
4349 hdmi_max_chunk_bytes);
4350 }
4351
4352 void
intel_dp_pcon_dsc_configure(struct intel_dp * intel_dp,const struct intel_crtc_state * crtc_state)4353 intel_dp_pcon_dsc_configure(struct intel_dp *intel_dp,
4354 const struct intel_crtc_state *crtc_state)
4355 {
4356 struct intel_display *display = to_intel_display(intel_dp);
4357 struct intel_connector *connector = intel_dp->attached_connector;
4358 const struct drm_display_info *info;
4359 u8 pps_param[6];
4360 int slice_height;
4361 int slice_width;
4362 int num_slices;
4363 int bits_per_pixel;
4364 int ret;
4365 bool hdmi_is_dsc_1_2;
4366
4367 if (!intel_dp_is_hdmi_2_1_sink(intel_dp))
4368 return;
4369
4370 if (!connector)
4371 return;
4372
4373 info = &connector->base.display_info;
4374
4375 hdmi_is_dsc_1_2 = info->hdmi.dsc_cap.v_1p2;
4376
4377 if (!drm_dp_pcon_enc_is_dsc_1_2(intel_dp->pcon_dsc_dpcd) ||
4378 !hdmi_is_dsc_1_2)
4379 return;
4380
4381 slice_height = intel_dp_pcon_dsc_enc_slice_height(crtc_state);
4382 if (!slice_height)
4383 return;
4384
4385 num_slices = intel_dp_pcon_dsc_enc_slices(intel_dp, crtc_state);
4386 if (!num_slices)
4387 return;
4388
4389 slice_width = DIV_ROUND_UP(crtc_state->hw.adjusted_mode.hdisplay,
4390 num_slices);
4391
4392 bits_per_pixel = intel_dp_pcon_dsc_enc_bpp(intel_dp, crtc_state,
4393 num_slices, slice_width);
4394 if (!bits_per_pixel)
4395 return;
4396
4397 pps_param[0] = slice_height & 0xFF;
4398 pps_param[1] = slice_height >> 8;
4399 pps_param[2] = slice_width & 0xFF;
4400 pps_param[3] = slice_width >> 8;
4401 pps_param[4] = bits_per_pixel & 0xFF;
4402 pps_param[5] = (bits_per_pixel >> 8) & 0x3;
4403
4404 ret = drm_dp_pcon_pps_override_param(&intel_dp->aux, pps_param);
4405 if (ret < 0)
4406 drm_dbg_kms(display->drm, "Failed to set pcon DSC\n");
4407 }
4408
intel_dp_configure_protocol_converter(struct intel_dp * intel_dp,const struct intel_crtc_state * crtc_state)4409 void intel_dp_configure_protocol_converter(struct intel_dp *intel_dp,
4410 const struct intel_crtc_state *crtc_state)
4411 {
4412 struct intel_display *display = to_intel_display(intel_dp);
4413 bool ycbcr444_to_420 = false;
4414 bool rgb_to_ycbcr = false;
4415 u8 tmp;
4416
4417 if (intel_dp->dpcd[DP_DPCD_REV] < 0x13)
4418 return;
4419
4420 if (!drm_dp_is_branch(intel_dp->dpcd))
4421 return;
4422
4423 tmp = intel_dp_has_hdmi_sink(intel_dp) ? DP_HDMI_DVI_OUTPUT_CONFIG : 0;
4424
4425 if (drm_dp_dpcd_writeb(&intel_dp->aux,
4426 DP_PROTOCOL_CONVERTER_CONTROL_0, tmp) != 1)
4427 drm_dbg_kms(display->drm,
4428 "Failed to %s protocol converter HDMI mode\n",
4429 str_enable_disable(intel_dp_has_hdmi_sink(intel_dp)));
4430
4431 if (crtc_state->sink_format == INTEL_OUTPUT_FORMAT_YCBCR420) {
4432 switch (crtc_state->output_format) {
4433 case INTEL_OUTPUT_FORMAT_YCBCR420:
4434 break;
4435 case INTEL_OUTPUT_FORMAT_YCBCR444:
4436 ycbcr444_to_420 = true;
4437 break;
4438 case INTEL_OUTPUT_FORMAT_RGB:
4439 rgb_to_ycbcr = true;
4440 ycbcr444_to_420 = true;
4441 break;
4442 default:
4443 MISSING_CASE(crtc_state->output_format);
4444 break;
4445 }
4446 } else if (crtc_state->sink_format == INTEL_OUTPUT_FORMAT_YCBCR444) {
4447 switch (crtc_state->output_format) {
4448 case INTEL_OUTPUT_FORMAT_YCBCR444:
4449 break;
4450 case INTEL_OUTPUT_FORMAT_RGB:
4451 rgb_to_ycbcr = true;
4452 break;
4453 default:
4454 MISSING_CASE(crtc_state->output_format);
4455 break;
4456 }
4457 }
4458
4459 tmp = ycbcr444_to_420 ? DP_CONVERSION_TO_YCBCR420_ENABLE : 0;
4460
4461 if (drm_dp_dpcd_writeb(&intel_dp->aux,
4462 DP_PROTOCOL_CONVERTER_CONTROL_1, tmp) != 1)
4463 drm_dbg_kms(display->drm,
4464 "Failed to %s protocol converter YCbCr 4:2:0 conversion mode\n",
4465 str_enable_disable(intel_dp->dfp.ycbcr_444_to_420));
4466
4467 tmp = rgb_to_ycbcr ? DP_CONVERSION_BT709_RGB_YCBCR_ENABLE : 0;
4468
4469 if (drm_dp_pcon_convert_rgb_to_ycbcr(&intel_dp->aux, tmp) < 0)
4470 drm_dbg_kms(display->drm,
4471 "Failed to %s protocol converter RGB->YCbCr conversion mode\n",
4472 str_enable_disable(tmp));
4473 }
4474
intel_dp_read_dprx_feature_enum(struct intel_dp * intel_dp)4475 static u8 intel_dp_read_dprx_feature_enum(struct intel_dp *intel_dp)
4476 {
4477 u8 dprx = 0;
4478
4479 drm_dp_dpcd_read_data(&intel_dp->aux, DP_DPRX_FEATURE_ENUMERATION_LIST,
4480 &dprx, sizeof(dprx));
4481 return dprx;
4482 }
4483
intel_dp_get_colorimetry_status(u8 dprx)4484 static bool intel_dp_get_colorimetry_status(u8 dprx)
4485 {
4486 return dprx & DP_VSC_SDP_EXT_FOR_COLORIMETRY_SUPPORTED;
4487 }
4488
intel_dp_get_sst_split_sdp_status(u8 dprx)4489 static bool intel_dp_get_sst_split_sdp_status(u8 dprx)
4490 {
4491 return dprx & DP_SST_SPLIT_SDP_CAP;
4492 }
4493
intel_dp_read_dsc_dpcd(struct drm_dp_aux * aux,u8 dsc_dpcd[DP_DSC_RECEIVER_CAP_SIZE])4494 static int intel_dp_read_dsc_dpcd(struct drm_dp_aux *aux,
4495 u8 dsc_dpcd[DP_DSC_RECEIVER_CAP_SIZE])
4496 {
4497 int ret;
4498
4499 ret = drm_dp_dpcd_read_data(aux, DP_DSC_SUPPORT, dsc_dpcd,
4500 DP_DSC_RECEIVER_CAP_SIZE);
4501 if (ret) {
4502 drm_dbg_kms(aux->drm_dev,
4503 "Could not read DSC DPCD register 0x%x Error: %pe\n",
4504 DP_DSC_SUPPORT, ERR_PTR(ret));
4505 return ret;
4506 }
4507
4508 drm_dbg_kms(aux->drm_dev, "DSC DPCD: %*ph\n",
4509 DP_DSC_RECEIVER_CAP_SIZE,
4510 dsc_dpcd);
4511 return 0;
4512 }
4513
init_dsc_overall_throughput_limits(struct intel_connector * connector,bool is_branch)4514 static void init_dsc_overall_throughput_limits(struct intel_connector *connector, bool is_branch)
4515 {
4516 u8 branch_caps[DP_DSC_BRANCH_CAP_SIZE];
4517 int line_width;
4518
4519 connector->dp.dsc_branch_caps.overall_throughput.rgb_yuv444 = INT_MAX;
4520 connector->dp.dsc_branch_caps.overall_throughput.yuv422_420 = INT_MAX;
4521 connector->dp.dsc_branch_caps.max_line_width = INT_MAX;
4522
4523 if (!is_branch)
4524 return;
4525
4526 if (drm_dp_dpcd_read_data(connector->dp.dsc_decompression_aux,
4527 DP_DSC_BRANCH_OVERALL_THROUGHPUT_0, branch_caps,
4528 sizeof(branch_caps)) != 0)
4529 return;
4530
4531 connector->dp.dsc_branch_caps.overall_throughput.rgb_yuv444 =
4532 drm_dp_dsc_branch_max_overall_throughput(branch_caps, true) ? : INT_MAX;
4533
4534 connector->dp.dsc_branch_caps.overall_throughput.yuv422_420 =
4535 drm_dp_dsc_branch_max_overall_throughput(branch_caps, false) ? : INT_MAX;
4536
4537 line_width = drm_dp_dsc_branch_max_line_width(branch_caps);
4538 connector->dp.dsc_branch_caps.max_line_width = line_width > 0 ? line_width : INT_MAX;
4539 }
4540
intel_dp_get_dsc_sink_cap(u8 dpcd_rev,const struct drm_dp_desc * desc,bool is_branch,struct intel_connector * connector)4541 void intel_dp_get_dsc_sink_cap(u8 dpcd_rev,
4542 const struct drm_dp_desc *desc, bool is_branch,
4543 struct intel_connector *connector)
4544 {
4545 struct intel_display *display = to_intel_display(connector);
4546
4547 /*
4548 * Clear the cached register set to avoid using stale values
4549 * for the sinks that do not support DSC.
4550 */
4551 memset(connector->dp.dsc_dpcd, 0, sizeof(connector->dp.dsc_dpcd));
4552
4553 /* Clear fec_capable to avoid using stale values */
4554 connector->dp.fec_capability = 0;
4555
4556 memset(&connector->dp.dsc_branch_caps, 0, sizeof(connector->dp.dsc_branch_caps));
4557 connector->dp.dsc_throughput_quirk = false;
4558
4559 if (dpcd_rev < DP_DPCD_REV_14)
4560 return;
4561
4562 if (intel_dp_read_dsc_dpcd(connector->dp.dsc_decompression_aux,
4563 connector->dp.dsc_dpcd) < 0)
4564 return;
4565
4566 if (drm_dp_dpcd_readb(connector->dp.dsc_decompression_aux, DP_FEC_CAPABILITY,
4567 &connector->dp.fec_capability) < 0) {
4568 drm_dbg_kms(display->drm, "Could not read FEC DPCD register\n");
4569 return;
4570 }
4571
4572 drm_dbg_kms(display->drm, "FEC CAPABILITY: %x\n",
4573 connector->dp.fec_capability);
4574
4575 if (!(connector->dp.dsc_dpcd[0] & DP_DSC_DECOMPRESSION_IS_SUPPORTED))
4576 return;
4577
4578 init_dsc_overall_throughput_limits(connector, is_branch);
4579
4580 /*
4581 * TODO: Move the HW rev check as well to the DRM core quirk table if
4582 * that's required after clarifying the list of affected devices.
4583 */
4584 if (drm_dp_has_quirk(desc, DP_DPCD_QUIRK_DSC_THROUGHPUT_BPP_LIMIT) &&
4585 desc->ident.hw_rev == 0x10)
4586 connector->dp.dsc_throughput_quirk = true;
4587 }
4588
intel_edp_get_dsc_sink_cap(u8 edp_dpcd_rev,struct intel_connector * connector)4589 static void intel_edp_get_dsc_sink_cap(u8 edp_dpcd_rev, struct intel_connector *connector)
4590 {
4591 if (edp_dpcd_rev < DP_EDP_14)
4592 return;
4593
4594 if (intel_dp_read_dsc_dpcd(connector->dp.dsc_decompression_aux,
4595 connector->dp.dsc_dpcd) < 0)
4596 return;
4597
4598 if (connector->dp.dsc_dpcd[0] & DP_DSC_DECOMPRESSION_IS_SUPPORTED)
4599 init_dsc_overall_throughput_limits(connector, false);
4600 }
4601
4602 static void
intel_dp_detect_dsc_caps(struct intel_dp * intel_dp,struct intel_connector * connector)4603 intel_dp_detect_dsc_caps(struct intel_dp *intel_dp, struct intel_connector *connector)
4604 {
4605 struct intel_display *display = to_intel_display(intel_dp);
4606
4607 /* Read DP Sink DSC Cap DPCD regs for DP v1.4 */
4608 if (!HAS_DSC(display))
4609 return;
4610
4611 if (intel_dp_is_edp(intel_dp))
4612 intel_edp_get_dsc_sink_cap(intel_dp->edp_dpcd[0],
4613 connector);
4614 else
4615 intel_dp_get_dsc_sink_cap(intel_dp->dpcd[DP_DPCD_REV],
4616 &intel_dp->desc, drm_dp_is_branch(intel_dp->dpcd),
4617 connector);
4618 }
4619
intel_edp_mso_mode_fixup(struct intel_connector * connector,struct drm_display_mode * mode)4620 static void intel_edp_mso_mode_fixup(struct intel_connector *connector,
4621 struct drm_display_mode *mode)
4622 {
4623 struct intel_display *display = to_intel_display(connector);
4624 struct intel_dp *intel_dp = intel_attached_dp(connector);
4625 int n = intel_dp->mso_link_count;
4626 int overlap = intel_dp->mso_pixel_overlap;
4627
4628 if (!mode || !n)
4629 return;
4630
4631 mode->hdisplay = (mode->hdisplay - overlap) * n;
4632 mode->hsync_start = (mode->hsync_start - overlap) * n;
4633 mode->hsync_end = (mode->hsync_end - overlap) * n;
4634 mode->htotal = (mode->htotal - overlap) * n;
4635 mode->clock *= n;
4636
4637 drm_mode_set_name(mode);
4638
4639 drm_dbg_kms(display->drm,
4640 "[CONNECTOR:%d:%s] using generated MSO mode: " DRM_MODE_FMT "\n",
4641 connector->base.base.id, connector->base.name,
4642 DRM_MODE_ARG(mode));
4643 }
4644
intel_edp_fixup_vbt_bpp(struct intel_encoder * encoder,int pipe_bpp)4645 void intel_edp_fixup_vbt_bpp(struct intel_encoder *encoder, int pipe_bpp)
4646 {
4647 struct intel_display *display = to_intel_display(encoder);
4648 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
4649 struct intel_connector *connector = intel_dp->attached_connector;
4650
4651 if (connector->panel.vbt.edp.bpp && pipe_bpp > connector->panel.vbt.edp.bpp) {
4652 /*
4653 * This is a big fat ugly hack.
4654 *
4655 * Some machines in UEFI boot mode provide us a VBT that has 18
4656 * bpp and 1.62 GHz link bandwidth for eDP, which for reasons
4657 * unknown we fail to light up. Yet the same BIOS boots up with
4658 * 24 bpp and 2.7 GHz link. Use the same bpp as the BIOS uses as
4659 * max, not what it tells us to use.
4660 *
4661 * Note: This will still be broken if the eDP panel is not lit
4662 * up by the BIOS, and thus we can't get the mode at module
4663 * load.
4664 */
4665 drm_dbg_kms(display->drm,
4666 "pipe has %d bpp for eDP panel, overriding BIOS-provided max %d bpp\n",
4667 pipe_bpp, connector->panel.vbt.edp.bpp);
4668 connector->panel.vbt.edp.bpp = pipe_bpp;
4669 }
4670 }
4671
intel_edp_mso_init(struct intel_dp * intel_dp)4672 static void intel_edp_mso_init(struct intel_dp *intel_dp)
4673 {
4674 struct intel_display *display = to_intel_display(intel_dp);
4675 struct intel_connector *connector = intel_dp->attached_connector;
4676 struct drm_display_info *info = &connector->base.display_info;
4677 u8 mso;
4678
4679 if (intel_dp->edp_dpcd[0] < DP_EDP_14)
4680 return;
4681
4682 if (drm_dp_dpcd_readb(&intel_dp->aux, DP_EDP_MSO_LINK_CAPABILITIES, &mso) != 1) {
4683 drm_err(display->drm, "Failed to read MSO cap\n");
4684 return;
4685 }
4686
4687 /* Valid configurations are SST or MSO 2x1, 2x2, 4x1 */
4688 mso &= DP_EDP_MSO_NUMBER_OF_LINKS_MASK;
4689 if (mso % 2 || mso > drm_dp_max_lane_count(intel_dp->dpcd)) {
4690 drm_err(display->drm, "Invalid MSO link count cap %u\n", mso);
4691 mso = 0;
4692 }
4693
4694 if (mso) {
4695 drm_dbg_kms(display->drm,
4696 "Sink MSO %ux%u configuration, pixel overlap %u\n",
4697 mso, drm_dp_max_lane_count(intel_dp->dpcd) / mso,
4698 info->mso_pixel_overlap);
4699 if (!HAS_MSO(display)) {
4700 drm_err(display->drm,
4701 "No source MSO support, disabling\n");
4702 mso = 0;
4703 }
4704 }
4705
4706 intel_dp->mso_link_count = mso;
4707 intel_dp->mso_pixel_overlap = mso ? info->mso_pixel_overlap : 0;
4708 }
4709
4710 static void
intel_edp_set_data_override_rates(struct intel_dp * intel_dp)4711 intel_edp_set_data_override_rates(struct intel_dp *intel_dp)
4712 {
4713 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
4714 int *sink_rates = intel_dp->sink_rates;
4715 int i, count = 0;
4716
4717 for (i = 0; i < intel_dp->num_sink_rates; i++) {
4718 if (intel_bios_encoder_reject_edp_rate(encoder->devdata,
4719 intel_dp->sink_rates[i]))
4720 continue;
4721
4722 sink_rates[count++] = intel_dp->sink_rates[i];
4723 }
4724 intel_dp->num_sink_rates = count;
4725 }
4726
4727 static void
intel_edp_set_sink_rates(struct intel_dp * intel_dp)4728 intel_edp_set_sink_rates(struct intel_dp *intel_dp)
4729 {
4730 struct intel_display *display = to_intel_display(intel_dp);
4731
4732 intel_dp->num_sink_rates = 0;
4733
4734 if (intel_dp->edp_dpcd[0] >= DP_EDP_14) {
4735 __le16 sink_rates[DP_MAX_SUPPORTED_RATES];
4736 int ret;
4737 int i;
4738
4739 ret = drm_dp_dpcd_read_data(&intel_dp->aux,
4740 DP_SUPPORTED_LINK_RATES,
4741 sink_rates, sizeof(sink_rates));
4742 if (ret < 0) {
4743 drm_dbg_kms(display->drm,
4744 "Unable to read eDP supported link rates, using default rates\n");
4745 memset(sink_rates, 0, sizeof(sink_rates));
4746 }
4747
4748 for (i = 0; i < ARRAY_SIZE(sink_rates); i++) {
4749 int rate;
4750
4751 /* Value read multiplied by 200kHz gives the per-lane
4752 * link rate in kHz. The source rates are, however,
4753 * stored in terms of LS_Clk kHz. The full conversion
4754 * back to symbols is
4755 * (val * 200kHz)*(8/10 ch. encoding)*(1/8 bit to Byte)
4756 */
4757 rate = le16_to_cpu(sink_rates[i]) * 200 / 10;
4758
4759 if (rate == 0)
4760 break;
4761
4762 /*
4763 * Some platforms cannot reliably drive HBR3 rates due to PHY limitations,
4764 * even if the sink advertises support. Reject any sink rates above HBR2 on
4765 * the known machines for stable output.
4766 */
4767 if (rate > 540000 &&
4768 intel_has_quirk(display, QUIRK_EDP_LIMIT_RATE_HBR2))
4769 break;
4770
4771 intel_dp->sink_rates[i] = rate;
4772 }
4773 intel_dp->num_sink_rates = i;
4774 }
4775
4776 /*
4777 * Use DP_LINK_RATE_SET if DP_SUPPORTED_LINK_RATES are available,
4778 * default to DP_MAX_LINK_RATE and DP_LINK_BW_SET otherwise.
4779 */
4780 if (intel_dp->num_sink_rates)
4781 intel_dp->use_rate_select = true;
4782 else
4783 intel_dp_set_sink_rates(intel_dp);
4784
4785 intel_edp_set_data_override_rates(intel_dp);
4786 }
4787
4788 static bool
intel_edp_init_dpcd(struct intel_dp * intel_dp,struct intel_connector * connector)4789 intel_edp_init_dpcd(struct intel_dp *intel_dp, struct intel_connector *connector)
4790 {
4791 struct intel_display *display = to_intel_display(intel_dp);
4792 int ret;
4793 u8 dprx;
4794
4795 /* this function is meant to be called only once */
4796 drm_WARN_ON(display->drm, intel_dp->dpcd[DP_DPCD_REV] != 0);
4797
4798 if (drm_dp_read_dpcd_caps(&intel_dp->aux, intel_dp->dpcd) != 0)
4799 return false;
4800
4801 drm_dp_read_desc(&intel_dp->aux, &intel_dp->desc,
4802 drm_dp_is_branch(intel_dp->dpcd));
4803 intel_init_dpcd_quirks(intel_dp, &intel_dp->desc.ident);
4804
4805 dprx = intel_dp_read_dprx_feature_enum(intel_dp);
4806
4807 intel_dp->colorimetry_support =
4808 intel_dp_get_colorimetry_status(dprx);
4809
4810 intel_dp->sst_split_sdp_support =
4811 intel_dp_get_sst_split_sdp_status(dprx);
4812
4813 /*
4814 * Read the eDP display control registers.
4815 *
4816 * Do this independent of DP_DPCD_DISPLAY_CONTROL_CAPABLE bit in
4817 * DP_EDP_CONFIGURATION_CAP, because some buggy displays do not have it
4818 * set, but require eDP 1.4+ detection (e.g. for supported link rates
4819 * method). The display control registers should read zero if they're
4820 * not supported anyway.
4821 */
4822 if (drm_dp_dpcd_read(&intel_dp->aux, DP_EDP_DPCD_REV,
4823 intel_dp->edp_dpcd, sizeof(intel_dp->edp_dpcd)) ==
4824 sizeof(intel_dp->edp_dpcd)) {
4825 drm_dbg_kms(display->drm, "eDP DPCD: %*ph\n",
4826 (int)sizeof(intel_dp->edp_dpcd),
4827 intel_dp->edp_dpcd);
4828
4829 intel_dp->use_max_params = intel_dp->edp_dpcd[0] < DP_EDP_14;
4830 }
4831
4832 /*
4833 * If needed, program our source OUI so we can make various Intel-specific AUX services
4834 * available (such as HDR backlight controls)
4835 */
4836 intel_dp_init_source_oui(intel_dp);
4837
4838 /* Read the ALPM DPCD caps */
4839 ret = drm_dp_dpcd_read_byte(&intel_dp->aux, DP_RECEIVER_ALPM_CAP,
4840 &intel_dp->alpm_dpcd);
4841 if (ret < 0)
4842 return false;
4843
4844 /*
4845 * This has to be called after intel_dp->edp_dpcd is filled, PSR checks
4846 * for SET_POWER_CAPABLE bit in intel_dp->edp_dpcd[1]
4847 */
4848 intel_psr_init_dpcd(intel_dp, connector);
4849
4850 intel_edp_set_sink_rates(intel_dp);
4851 intel_dp_set_max_sink_lane_count(intel_dp);
4852
4853 /* Read the eDP DSC DPCD registers */
4854 intel_dp_detect_dsc_caps(intel_dp, connector);
4855
4856 return true;
4857 }
4858
4859 static bool
intel_dp_has_sink_count(struct intel_dp * intel_dp)4860 intel_dp_has_sink_count(struct intel_dp *intel_dp)
4861 {
4862 if (!intel_dp->attached_connector)
4863 return false;
4864
4865 return drm_dp_read_sink_count_cap(&intel_dp->attached_connector->base,
4866 intel_dp->dpcd,
4867 &intel_dp->desc);
4868 }
4869
intel_dp_update_sink_caps(struct intel_dp * intel_dp)4870 void intel_dp_update_sink_caps(struct intel_dp *intel_dp)
4871 {
4872 struct intel_display *display = to_intel_display(intel_dp);
4873
4874 intel_dp_set_sink_rates(intel_dp);
4875 intel_dp_set_max_sink_lane_count(intel_dp);
4876 /*
4877 * Handle unexpected sink cap changes, or a race between setting
4878 * the deferred link params flag in the HPD IRQ handler and
4879 * clearing the flag during connector detect.
4880 */
4881 if (intel_dp_set_common_link_params(intel_dp) &&
4882 !intel_dp->reset_link_params) {
4883 drm_dbg_kms(display->drm,
4884 "DPRX capabilities changed before long HPD or RX_CAP_CHANGED signal\n");
4885 intel_dp->reset_link_params = true;
4886 }
4887 }
4888
4889 static bool
intel_dp_get_dpcd(struct intel_dp * intel_dp)4890 intel_dp_get_dpcd(struct intel_dp *intel_dp)
4891 {
4892 int ret;
4893
4894 if (intel_dp_init_lttpr_and_dprx_caps(intel_dp) < 0)
4895 return false;
4896
4897 /*
4898 * Don't clobber cached eDP rates. Also skip re-reading
4899 * the OUI/ID since we know it won't change.
4900 */
4901 if (!intel_dp_is_edp(intel_dp)) {
4902 u8 dprx;
4903
4904 drm_dp_read_desc(&intel_dp->aux, &intel_dp->desc,
4905 drm_dp_is_branch(intel_dp->dpcd));
4906
4907 intel_init_dpcd_quirks(intel_dp, &intel_dp->desc.ident);
4908
4909 dprx = intel_dp_read_dprx_feature_enum(intel_dp);
4910
4911 intel_dp->colorimetry_support =
4912 intel_dp_get_colorimetry_status(dprx);
4913
4914 intel_dp->sst_split_sdp_support =
4915 intel_dp_get_sst_split_sdp_status(dprx);
4916
4917 intel_dp_update_sink_caps(intel_dp);
4918 }
4919
4920 if (intel_dp_has_sink_count(intel_dp)) {
4921 ret = drm_dp_read_sink_count(&intel_dp->aux);
4922 if (ret < 0)
4923 return false;
4924
4925 /*
4926 * Sink count can change between short pulse hpd hence
4927 * a member variable in intel_dp will track any changes
4928 * between short pulse interrupts.
4929 */
4930 intel_dp->sink_count = ret;
4931
4932 /*
4933 * SINK_COUNT == 0 and DOWNSTREAM_PORT_PRESENT == 1 implies that
4934 * a dongle is present but no display. Unless we require to know
4935 * if a dongle is present or not, we don't need to update
4936 * downstream port information. So, an early return here saves
4937 * time from performing other operations which are not required.
4938 */
4939 if (!intel_dp->sink_count)
4940 return false;
4941 }
4942
4943 return drm_dp_read_downstream_info(&intel_dp->aux, intel_dp->dpcd,
4944 intel_dp->downstream_ports) == 0;
4945 }
4946
intel_dp_mst_mode_str(enum drm_dp_mst_mode mst_mode)4947 static const char *intel_dp_mst_mode_str(enum drm_dp_mst_mode mst_mode)
4948 {
4949 if (mst_mode == DRM_DP_MST)
4950 return "MST";
4951 else if (mst_mode == DRM_DP_SST_SIDEBAND_MSG)
4952 return "SST w/ sideband messaging";
4953 else
4954 return "SST";
4955 }
4956
4957 static enum drm_dp_mst_mode
intel_dp_mst_mode_choose(struct intel_dp * intel_dp,enum drm_dp_mst_mode sink_mst_mode)4958 intel_dp_mst_mode_choose(struct intel_dp *intel_dp,
4959 enum drm_dp_mst_mode sink_mst_mode)
4960 {
4961 struct intel_display *display = to_intel_display(intel_dp);
4962
4963 if (!display->params.enable_dp_mst)
4964 return DRM_DP_SST;
4965
4966 if (!intel_dp_mst_source_support(intel_dp))
4967 return DRM_DP_SST;
4968
4969 if (sink_mst_mode == DRM_DP_SST_SIDEBAND_MSG &&
4970 !(intel_dp->dpcd[DP_MAIN_LINK_CHANNEL_CODING] & DP_CAP_ANSI_128B132B))
4971 return DRM_DP_SST;
4972
4973 return sink_mst_mode;
4974 }
4975
4976 static enum drm_dp_mst_mode
intel_dp_mst_detect(struct intel_dp * intel_dp)4977 intel_dp_mst_detect(struct intel_dp *intel_dp)
4978 {
4979 struct intel_display *display = to_intel_display(intel_dp);
4980 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
4981 enum drm_dp_mst_mode sink_mst_mode;
4982 enum drm_dp_mst_mode mst_detect;
4983
4984 sink_mst_mode = drm_dp_read_mst_cap(&intel_dp->aux, intel_dp->dpcd);
4985
4986 mst_detect = intel_dp_mst_mode_choose(intel_dp, sink_mst_mode);
4987
4988 drm_dbg_kms(display->drm,
4989 "[ENCODER:%d:%s] MST support: port: %s, sink: %s, modparam: %s -> enable: %s\n",
4990 encoder->base.base.id, encoder->base.name,
4991 str_yes_no(intel_dp_mst_source_support(intel_dp)),
4992 intel_dp_mst_mode_str(sink_mst_mode),
4993 str_yes_no(display->params.enable_dp_mst),
4994 intel_dp_mst_mode_str(mst_detect));
4995
4996 return mst_detect;
4997 }
4998
4999 static void
intel_dp_mst_configure(struct intel_dp * intel_dp)5000 intel_dp_mst_configure(struct intel_dp *intel_dp)
5001 {
5002 if (!intel_dp_mst_source_support(intel_dp))
5003 return;
5004
5005 intel_dp->is_mst = intel_dp->mst_detect != DRM_DP_SST;
5006
5007 if (intel_dp->is_mst)
5008 intel_dp_mst_prepare_probe(intel_dp);
5009
5010 drm_dp_mst_topology_mgr_set_mst(&intel_dp->mst.mgr, intel_dp->is_mst);
5011
5012 /* Avoid stale info on the next detect cycle. */
5013 intel_dp->mst_detect = DRM_DP_SST;
5014 }
5015
5016 static void
intel_dp_mst_disconnect(struct intel_dp * intel_dp)5017 intel_dp_mst_disconnect(struct intel_dp *intel_dp)
5018 {
5019 struct intel_display *display = to_intel_display(intel_dp);
5020
5021 if (!intel_dp->is_mst)
5022 return;
5023
5024 drm_dbg_kms(display->drm,
5025 "MST device may have disappeared %d vs %d\n",
5026 intel_dp->is_mst, intel_dp->mst.mgr.mst_state);
5027 intel_dp->is_mst = false;
5028 drm_dp_mst_topology_mgr_set_mst(&intel_dp->mst.mgr, intel_dp->is_mst);
5029 }
5030
5031 #define INTEL_DP_DEVICE_SERVICE_IRQ_MASK_SST (DP_AUTOMATED_TEST_REQUEST | \
5032 DP_CP_IRQ | \
5033 DP_SINK_SPECIFIC_IRQ)
5034
5035 #define INTEL_DP_DEVICE_SERVICE_IRQ_MASK_MST (DP_CP_IRQ | \
5036 DP_DOWN_REP_MSG_RDY | \
5037 DP_UP_REQ_MSG_RDY)
5038
5039 #define INTEL_DP_LINK_SERVICE_IRQ_MASK_SST (RX_CAP_CHANGED | \
5040 LINK_STATUS_CHANGED | \
5041 HDMI_LINK_STATUS_CHANGED | \
5042 CONNECTED_OFF_ENTRY_REQUESTED | \
5043 DP_TUNNELING_IRQ)
5044
5045 #define INTEL_DP_LINK_SERVICE_IRQ_MASK_MST (RX_CAP_CHANGED | \
5046 LINK_STATUS_CHANGED | \
5047 DP_TUNNELING_IRQ)
5048
5049 static bool
intel_dp_get_sink_irq_esi(struct intel_dp * intel_dp,u8 * esi)5050 intel_dp_get_sink_irq_esi(struct intel_dp *intel_dp, u8 *esi)
5051 {
5052 struct intel_display *display = to_intel_display(intel_dp);
5053
5054 /*
5055 * Display WA for HSD #13013007775: mtl/arl/lnl
5056 * Read the sink count and link service IRQ registers in separate
5057 * transactions to prevent disconnecting the sink on a TBT link
5058 * inadvertently.
5059 */
5060 if (IS_DISPLAY_VER(display, 14, 20) && !display->platform.battlemage) {
5061 if (drm_dp_dpcd_read(&intel_dp->aux, DP_SINK_COUNT_ESI, esi, 3) != 3)
5062 return false;
5063
5064 /* DP_SINK_COUNT_ESI + 3 == DP_LINK_SERVICE_IRQ_VECTOR_ESI0 */
5065 return drm_dp_dpcd_readb(&intel_dp->aux, DP_LINK_SERVICE_IRQ_VECTOR_ESI0,
5066 &esi[3]) == 1;
5067 }
5068
5069 return drm_dp_dpcd_read(&intel_dp->aux, DP_SINK_COUNT_ESI, esi, 4) == 4;
5070 }
5071
intel_dp_ack_sink_irq_esi(struct intel_dp * intel_dp,u8 esi[4])5072 static bool intel_dp_ack_sink_irq_esi(struct intel_dp *intel_dp, u8 esi[4])
5073 {
5074 int retry;
5075
5076 for (retry = 0; retry < 3; retry++) {
5077 if (drm_dp_dpcd_write(&intel_dp->aux, DP_SINK_COUNT_ESI + 1,
5078 &esi[1], 3) == 3)
5079 return true;
5080 }
5081
5082 return false;
5083 }
5084
5085 /* Return %true if reading the ESI vector succeeded, %false otherwise. */
intel_dp_get_sink_irq_esi_sst(struct intel_dp * intel_dp,u8 esi[4])5086 static bool intel_dp_get_sink_irq_esi_sst(struct intel_dp *intel_dp, u8 esi[4])
5087 {
5088 memset(esi, 0, 4);
5089
5090 /*
5091 * TODO: For DP_DPCD_REV >= 0x12 read
5092 * DP_SINK_COUNT_ESI and DP_DEVICE_SERVICE_IRQ_VECTOR_ESI0.
5093 */
5094 if (drm_dp_dpcd_read_data(&intel_dp->aux, DP_SINK_COUNT, esi, 2) != 0)
5095 return false;
5096
5097 if (intel_dp->dpcd[DP_DPCD_REV] < DP_DPCD_REV_12)
5098 return true;
5099
5100 /* TODO: Read DP_DEVICE_SERVICE_IRQ_VECTOR_ESI1 as well */
5101 if (drm_dp_dpcd_read_byte(&intel_dp->aux, DP_LINK_SERVICE_IRQ_VECTOR_ESI0, &esi[3]) != 0)
5102 return false;
5103
5104 return true;
5105 }
5106
5107 /* Return %true if acking the ESI vector IRQ events succeeded, %false otherwise. */
intel_dp_ack_sink_irq_esi_sst(struct intel_dp * intel_dp,u8 esi[4])5108 static bool intel_dp_ack_sink_irq_esi_sst(struct intel_dp *intel_dp, u8 esi[4])
5109 {
5110 /*
5111 * TODO: For DP_DPCD_REV >= 0x12 write
5112 * DP_DEVICE_SERVICE_IRQ_VECTOR_ESI0
5113 */
5114 if (drm_dp_dpcd_write_byte(&intel_dp->aux, DP_DEVICE_SERVICE_IRQ_VECTOR, esi[1]) != 0)
5115 return false;
5116
5117 if (intel_dp->dpcd[DP_DPCD_REV] < DP_DPCD_REV_12)
5118 return true;
5119
5120 /* TODO: Read DP_DEVICE_SERVICE_IRQ_VECTOR_ESI1 as well */
5121 if (drm_dp_dpcd_write_byte(&intel_dp->aux, DP_LINK_SERVICE_IRQ_VECTOR_ESI0, esi[3]) != 0)
5122 return false;
5123
5124 return true;
5125 }
5126
5127 /*
5128 * Return %true if reading the ESI vector and acking the ESI IRQ events succeeded,
5129 * %false otherwise.
5130 */
intel_dp_get_and_ack_sink_irq_esi_sst(struct intel_dp * intel_dp,u8 esi[4])5131 static bool intel_dp_get_and_ack_sink_irq_esi_sst(struct intel_dp *intel_dp, u8 esi[4])
5132 {
5133 struct intel_display *display = to_intel_display(intel_dp);
5134 struct intel_connector *connector = intel_dp->attached_connector;
5135 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
5136
5137 if (!intel_dp_get_sink_irq_esi_sst(intel_dp, esi))
5138 return false;
5139
5140 drm_dbg_kms(display->drm,
5141 "[CONNECTOR:%d:%s][ENCODER:%d:%s] DPRX ESI: %4ph\n",
5142 connector->base.base.id, connector->base.name,
5143 encoder->base.base.id, encoder->base.name,
5144 esi);
5145
5146 esi[1] &= INTEL_DP_DEVICE_SERVICE_IRQ_MASK_SST;
5147 esi[3] &= INTEL_DP_LINK_SERVICE_IRQ_MASK_SST;
5148
5149 if (mem_is_zero(&esi[1], 3))
5150 return true;
5151
5152 if (!intel_dp_ack_sink_irq_esi_sst(intel_dp, esi))
5153 return false;
5154
5155 return true;
5156 }
5157
5158 bool
intel_dp_needs_vsc_colorimetry(const struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)5159 intel_dp_needs_vsc_colorimetry(const struct intel_crtc_state *crtc_state,
5160 const struct drm_connector_state *conn_state)
5161 {
5162 struct intel_dp *intel_dp =
5163 enc_to_intel_dp(to_intel_encoder(conn_state->best_encoder));
5164
5165 /*
5166 * As per DP 1.4a spec section 2.2.4.3 [MSA Field for Indication
5167 * of Color Encoding Format and Content Color Gamut], in order to
5168 * send YCBCR 420 or HDR BT.2020 signals we should use DP VSC SDP.
5169 * Only signal this when the sink advertises VSC SDP colorimetry
5170 * support.
5171 */
5172 if (!intel_dp->colorimetry_support)
5173 return false;
5174
5175 if (crtc_state->output_format == INTEL_OUTPUT_FORMAT_YCBCR420)
5176 return true;
5177
5178 switch (conn_state->colorspace) {
5179 case DRM_MODE_COLORIMETRY_SYCC_601:
5180 case DRM_MODE_COLORIMETRY_OPYCC_601:
5181 case DRM_MODE_COLORIMETRY_BT2020_YCC:
5182 case DRM_MODE_COLORIMETRY_BT2020_RGB:
5183 case DRM_MODE_COLORIMETRY_BT2020_CYCC:
5184 return true;
5185 default:
5186 break;
5187 }
5188
5189 return false;
5190 }
5191
intel_dp_as_sdp_pack(const struct drm_dp_as_sdp * as_sdp,struct dp_sdp * sdp,size_t size)5192 static ssize_t intel_dp_as_sdp_pack(const struct drm_dp_as_sdp *as_sdp,
5193 struct dp_sdp *sdp, size_t size)
5194 {
5195 size_t length = sizeof(struct dp_sdp);
5196
5197 if (size < length)
5198 return -ENOSPC;
5199
5200 memset(sdp, 0, size);
5201
5202 /* Prepare AS (Adaptive Sync) SDP Header */
5203 sdp->sdp_header.HB0 = 0;
5204 sdp->sdp_header.HB1 = as_sdp->sdp_type;
5205 sdp->sdp_header.HB2 = as_sdp->revision;
5206 sdp->sdp_header.HB3 = as_sdp->length;
5207
5208 /* Fill AS (Adaptive Sync) SDP Payload */
5209 sdp->db[0] = as_sdp->mode;
5210 sdp->db[1] = as_sdp->vtotal & 0xFF;
5211 sdp->db[2] = (as_sdp->vtotal >> 8) & 0xFF;
5212 sdp->db[3] = as_sdp->target_rr & 0xFF;
5213 sdp->db[4] = (as_sdp->target_rr >> 8) & 0x3;
5214
5215 if (as_sdp->target_rr_divider)
5216 sdp->db[4] |= 0x20;
5217
5218 sdp->db[7] = as_sdp->coasting_vtotal & 0xFF;
5219 sdp->db[8] = (as_sdp->coasting_vtotal >> 8) & 0xFF;
5220
5221 return length;
5222 }
5223
5224 static ssize_t
intel_dp_hdr_metadata_infoframe_sdp_pack(struct intel_display * display,const struct hdmi_drm_infoframe * drm_infoframe,struct dp_sdp * sdp,size_t size)5225 intel_dp_hdr_metadata_infoframe_sdp_pack(struct intel_display *display,
5226 const struct hdmi_drm_infoframe *drm_infoframe,
5227 struct dp_sdp *sdp,
5228 size_t size)
5229 {
5230 size_t length = sizeof(struct dp_sdp);
5231 const int infoframe_size = HDMI_INFOFRAME_HEADER_SIZE + HDMI_DRM_INFOFRAME_SIZE;
5232 unsigned char buf[HDMI_INFOFRAME_HEADER_SIZE + HDMI_DRM_INFOFRAME_SIZE];
5233 ssize_t len;
5234
5235 if (size < length)
5236 return -ENOSPC;
5237
5238 memset(sdp, 0, size);
5239
5240 len = hdmi_drm_infoframe_pack_only(drm_infoframe, buf, sizeof(buf));
5241 if (len < 0) {
5242 drm_dbg_kms(display->drm,
5243 "buffer size is smaller than hdr metadata infoframe\n");
5244 return -ENOSPC;
5245 }
5246
5247 if (len != infoframe_size) {
5248 drm_dbg_kms(display->drm, "wrong static hdr metadata size\n");
5249 return -ENOSPC;
5250 }
5251
5252 /*
5253 * Set up the infoframe sdp packet for HDR static metadata.
5254 * Prepare VSC Header for SU as per DP 1.4a spec,
5255 * Table 2-100 and Table 2-101
5256 */
5257
5258 /* Secondary-Data Packet ID, 00h for non-Audio INFOFRAME */
5259 sdp->sdp_header.HB0 = 0;
5260 /*
5261 * Packet Type 80h + Non-audio INFOFRAME Type value
5262 * HDMI_INFOFRAME_TYPE_DRM: 0x87
5263 * - 80h + Non-audio INFOFRAME Type value
5264 * - InfoFrame Type: 0x07
5265 * [CTA-861-G Table-42 Dynamic Range and Mastering InfoFrame]
5266 */
5267 sdp->sdp_header.HB1 = drm_infoframe->type;
5268 /*
5269 * Least Significant Eight Bits of (Data Byte Count – 1)
5270 * infoframe_size - 1
5271 */
5272 sdp->sdp_header.HB2 = 0x1D;
5273 /* INFOFRAME SDP Version Number */
5274 sdp->sdp_header.HB3 = (0x13 << 2);
5275 /* CTA Header Byte 2 (INFOFRAME Version Number) */
5276 sdp->db[0] = drm_infoframe->version;
5277 /* CTA Header Byte 3 (Length of INFOFRAME): HDMI_DRM_INFOFRAME_SIZE */
5278 sdp->db[1] = drm_infoframe->length;
5279 /*
5280 * Copy HDMI_DRM_INFOFRAME_SIZE size from a buffer after
5281 * HDMI_INFOFRAME_HEADER_SIZE
5282 */
5283 BUILD_BUG_ON(sizeof(sdp->db) < HDMI_DRM_INFOFRAME_SIZE + 2);
5284 memcpy(&sdp->db[2], &buf[HDMI_INFOFRAME_HEADER_SIZE],
5285 HDMI_DRM_INFOFRAME_SIZE);
5286
5287 /*
5288 * Size of DP infoframe sdp packet for HDR static metadata consists of
5289 * - DP SDP Header(struct dp_sdp_header): 4 bytes
5290 * - Two Data Blocks: 2 bytes
5291 * CTA Header Byte2 (INFOFRAME Version Number)
5292 * CTA Header Byte3 (Length of INFOFRAME)
5293 * - HDMI_DRM_INFOFRAME_SIZE: 26 bytes
5294 *
5295 * Prior to GEN11's GMP register size is identical to DP HDR static metadata
5296 * infoframe size. But GEN11+ has larger than that size, write_infoframe
5297 * will pad rest of the size.
5298 */
5299 return sizeof(struct dp_sdp_header) + 2 + HDMI_DRM_INFOFRAME_SIZE;
5300 }
5301
intel_write_dp_sdp(struct intel_encoder * encoder,const struct intel_crtc_state * crtc_state,unsigned int type)5302 static void intel_write_dp_sdp(struct intel_encoder *encoder,
5303 const struct intel_crtc_state *crtc_state,
5304 unsigned int type)
5305 {
5306 struct intel_display *display = to_intel_display(encoder);
5307 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
5308 struct dp_sdp sdp = {};
5309 ssize_t len;
5310
5311 if ((crtc_state->infoframes.enable &
5312 intel_hdmi_infoframe_enable(type)) == 0)
5313 return;
5314
5315 switch (type) {
5316 case DP_SDP_VSC:
5317 len = drm_dp_vsc_sdp_pack(&crtc_state->infoframes.vsc, &sdp);
5318 break;
5319 case HDMI_PACKET_TYPE_GAMUT_METADATA:
5320 len = intel_dp_hdr_metadata_infoframe_sdp_pack(display,
5321 &crtc_state->infoframes.drm.drm,
5322 &sdp, sizeof(sdp));
5323 break;
5324 case DP_SDP_ADAPTIVE_SYNC:
5325 len = intel_dp_as_sdp_pack(&crtc_state->infoframes.as_sdp, &sdp,
5326 sizeof(sdp));
5327 break;
5328 default:
5329 MISSING_CASE(type);
5330 return;
5331 }
5332
5333 if (drm_WARN_ON(display->drm, len < 0))
5334 return;
5335
5336 dig_port->write_infoframe(encoder, crtc_state, type, &sdp, len);
5337 }
5338
intel_dp_set_infoframes(struct intel_encoder * encoder,bool enable,const struct intel_crtc_state * crtc_state,const struct drm_connector_state * conn_state)5339 void intel_dp_set_infoframes(struct intel_encoder *encoder,
5340 bool enable,
5341 const struct intel_crtc_state *crtc_state,
5342 const struct drm_connector_state *conn_state)
5343 {
5344 struct intel_display *display = to_intel_display(encoder);
5345 intel_reg_t reg = HSW_TVIDEO_DIP_CTL(display, crtc_state->cpu_transcoder);
5346 u32 dip_enable = VIDEO_DIP_ENABLE_AVI_HSW | VIDEO_DIP_ENABLE_GCP_HSW |
5347 VIDEO_DIP_ENABLE_VS_HSW | VIDEO_DIP_ENABLE_GMP_HSW |
5348 VIDEO_DIP_ENABLE_SPD_HSW | VIDEO_DIP_ENABLE_DRM_GLK;
5349
5350 if (HAS_AS_SDP(display))
5351 dip_enable |= VIDEO_DIP_ENABLE_AS_ADL;
5352
5353 u32 val = intel_de_read(display, reg) & ~dip_enable;
5354
5355 /* TODO: Sanitize DSC enabling wrt. intel_dsc_dp_pps_write(). */
5356 if (!enable && HAS_DSC(display))
5357 val &= ~VDIP_ENABLE_PPS;
5358
5359 /*
5360 * This routine disables VSC DIP if the function is called
5361 * to disable SDP or if it does not have PSR
5362 */
5363 if (!enable || !crtc_state->has_psr)
5364 val &= ~VIDEO_DIP_ENABLE_VSC_HSW;
5365
5366 intel_de_write(display, reg, val);
5367 intel_de_posting_read(display, reg);
5368
5369 if (!enable)
5370 return;
5371
5372 intel_write_dp_sdp(encoder, crtc_state, DP_SDP_VSC);
5373 intel_write_dp_sdp(encoder, crtc_state, DP_SDP_ADAPTIVE_SYNC);
5374
5375 intel_write_dp_sdp(encoder, crtc_state, HDMI_PACKET_TYPE_GAMUT_METADATA);
5376 }
5377
5378 static
intel_dp_as_sdp_unpack(struct drm_dp_as_sdp * as_sdp,const void * buffer,size_t size)5379 int intel_dp_as_sdp_unpack(struct drm_dp_as_sdp *as_sdp,
5380 const void *buffer, size_t size)
5381 {
5382 const struct dp_sdp *sdp = buffer;
5383
5384 if (size < sizeof(struct dp_sdp))
5385 return -EINVAL;
5386
5387 memset(as_sdp, 0, sizeof(*as_sdp));
5388
5389 if (sdp->sdp_header.HB0 != 0)
5390 return -EINVAL;
5391
5392 if (sdp->sdp_header.HB1 != DP_SDP_ADAPTIVE_SYNC)
5393 return -EINVAL;
5394
5395 if ((sdp->sdp_header.HB3 & 0x3F) != 9)
5396 return -EINVAL;
5397
5398 as_sdp->sdp_type = sdp->sdp_header.HB1;
5399 as_sdp->length = sdp->sdp_header.HB3 & DP_AS_SDP_LENGTH_MASK;
5400 as_sdp->revision = sdp->sdp_header.HB2;
5401 as_sdp->mode = sdp->db[0] & DP_AS_SDP_OPERATION_MODE_MASK;
5402 as_sdp->vtotal = (sdp->db[2] << 8) | sdp->db[1];
5403 as_sdp->target_rr = ((sdp->db[4] & 0x3) << 8) | sdp->db[3];
5404 as_sdp->target_rr_divider = sdp->db[4] & 0x20 ? true : false;
5405 as_sdp->coasting_vtotal = (sdp->db[8] << 8) | sdp->db[7];
5406
5407 return 0;
5408 }
5409
intel_dp_vsc_sdp_unpack(struct drm_dp_vsc_sdp * vsc,const void * buffer,size_t size)5410 static int intel_dp_vsc_sdp_unpack(struct drm_dp_vsc_sdp *vsc,
5411 const void *buffer, size_t size)
5412 {
5413 const struct dp_sdp *sdp = buffer;
5414
5415 if (size < sizeof(struct dp_sdp))
5416 return -EINVAL;
5417
5418 memset(vsc, 0, sizeof(*vsc));
5419
5420 if (sdp->sdp_header.HB0 != 0)
5421 return -EINVAL;
5422
5423 if (sdp->sdp_header.HB1 != DP_SDP_VSC)
5424 return -EINVAL;
5425
5426 vsc->sdp_type = sdp->sdp_header.HB1;
5427 vsc->revision = sdp->sdp_header.HB2;
5428 vsc->length = sdp->sdp_header.HB3;
5429
5430 if ((sdp->sdp_header.HB2 == 0x2 && sdp->sdp_header.HB3 == 0x8) ||
5431 (sdp->sdp_header.HB2 == 0x4 && sdp->sdp_header.HB3 == 0xe) ||
5432 (sdp->sdp_header.HB2 == 0x6 && sdp->sdp_header.HB3 == 0x10)) {
5433 /*
5434 * - HB2 = 0x2, HB3 = 0x8
5435 * VSC SDP supporting 3D stereo + PSR
5436 * - HB2 = 0x4, HB3 = 0xe
5437 * VSC SDP supporting 3D stereo + PSR2 with Y-coordinate of
5438 * first scan line of the SU region (applies to eDP v1.4b
5439 * and higher).
5440 * - HB2 = 0x6, HB3 = 0x10
5441 * VSC SDP supporting 3D stereo + Panel Replay.
5442 */
5443 return 0;
5444 } else if (sdp->sdp_header.HB2 == 0x5 && sdp->sdp_header.HB3 == 0x13) {
5445 /*
5446 * - HB2 = 0x5, HB3 = 0x13
5447 * VSC SDP supporting 3D stereo + PSR2 + Pixel Encoding/Colorimetry
5448 * Format.
5449 */
5450 vsc->pixelformat = (sdp->db[16] >> 4) & 0xf;
5451 vsc->colorimetry = sdp->db[16] & 0xf;
5452 vsc->dynamic_range = (sdp->db[17] >> 7) & 0x1;
5453
5454 switch (sdp->db[17] & 0x7) {
5455 case 0x0:
5456 vsc->bpc = 6;
5457 break;
5458 case 0x1:
5459 vsc->bpc = 8;
5460 break;
5461 case 0x2:
5462 vsc->bpc = 10;
5463 break;
5464 case 0x3:
5465 vsc->bpc = 12;
5466 break;
5467 case 0x4:
5468 vsc->bpc = 16;
5469 break;
5470 default:
5471 MISSING_CASE(sdp->db[17] & 0x7);
5472 return -EINVAL;
5473 }
5474
5475 vsc->content_type = sdp->db[18] & 0x7;
5476 } else {
5477 return -EINVAL;
5478 }
5479
5480 return 0;
5481 }
5482
5483 static void
intel_read_dp_as_sdp(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct drm_dp_as_sdp * as_sdp)5484 intel_read_dp_as_sdp(struct intel_encoder *encoder,
5485 struct intel_crtc_state *crtc_state,
5486 struct drm_dp_as_sdp *as_sdp)
5487 {
5488 struct intel_display *display = to_intel_display(encoder);
5489 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
5490 unsigned int type = DP_SDP_ADAPTIVE_SYNC;
5491 struct dp_sdp sdp = {};
5492 int ret;
5493
5494 if ((crtc_state->infoframes.enable &
5495 intel_hdmi_infoframe_enable(type)) == 0)
5496 return;
5497
5498 dig_port->read_infoframe(encoder, crtc_state, type, &sdp,
5499 sizeof(sdp));
5500
5501 ret = intel_dp_as_sdp_unpack(as_sdp, &sdp, sizeof(sdp));
5502 if (ret)
5503 drm_dbg_kms(display->drm, "Failed to unpack DP AS SDP\n");
5504 }
5505
5506 static int
intel_dp_hdr_metadata_infoframe_sdp_unpack(struct hdmi_drm_infoframe * drm_infoframe,const void * buffer,size_t size)5507 intel_dp_hdr_metadata_infoframe_sdp_unpack(struct hdmi_drm_infoframe *drm_infoframe,
5508 const void *buffer, size_t size)
5509 {
5510 int ret;
5511
5512 const struct dp_sdp *sdp = buffer;
5513
5514 if (size < sizeof(struct dp_sdp))
5515 return -EINVAL;
5516
5517 if (sdp->sdp_header.HB0 != 0)
5518 return -EINVAL;
5519
5520 if (sdp->sdp_header.HB1 != HDMI_INFOFRAME_TYPE_DRM)
5521 return -EINVAL;
5522
5523 /*
5524 * Least Significant Eight Bits of (Data Byte Count – 1)
5525 * 1Dh (i.e., Data Byte Count = 30 bytes).
5526 */
5527 if (sdp->sdp_header.HB2 != 0x1D)
5528 return -EINVAL;
5529
5530 /* Most Significant Two Bits of (Data Byte Count – 1), Clear to 00b. */
5531 if ((sdp->sdp_header.HB3 & 0x3) != 0)
5532 return -EINVAL;
5533
5534 /* INFOFRAME SDP Version Number */
5535 if (((sdp->sdp_header.HB3 >> 2) & 0x3f) != 0x13)
5536 return -EINVAL;
5537
5538 /* CTA Header Byte 2 (INFOFRAME Version Number) */
5539 if (sdp->db[0] != 1)
5540 return -EINVAL;
5541
5542 /* CTA Header Byte 3 (Length of INFOFRAME): HDMI_DRM_INFOFRAME_SIZE */
5543 if (sdp->db[1] != HDMI_DRM_INFOFRAME_SIZE)
5544 return -EINVAL;
5545
5546 ret = hdmi_drm_infoframe_unpack_only(drm_infoframe, &sdp->db[2],
5547 HDMI_DRM_INFOFRAME_SIZE);
5548
5549 return ret;
5550 }
5551
intel_read_dp_vsc_sdp(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct drm_dp_vsc_sdp * vsc)5552 static void intel_read_dp_vsc_sdp(struct intel_encoder *encoder,
5553 struct intel_crtc_state *crtc_state,
5554 struct drm_dp_vsc_sdp *vsc)
5555 {
5556 struct intel_display *display = to_intel_display(encoder);
5557 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
5558 unsigned int type = DP_SDP_VSC;
5559 struct dp_sdp sdp = {};
5560 int ret;
5561
5562 if ((crtc_state->infoframes.enable &
5563 intel_hdmi_infoframe_enable(type)) == 0)
5564 return;
5565
5566 dig_port->read_infoframe(encoder, crtc_state, type, &sdp, sizeof(sdp));
5567
5568 ret = intel_dp_vsc_sdp_unpack(vsc, &sdp, sizeof(sdp));
5569
5570 if (ret)
5571 drm_dbg_kms(display->drm, "Failed to unpack DP VSC SDP\n");
5572 }
5573
intel_read_dp_hdr_metadata_infoframe_sdp(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct hdmi_drm_infoframe * drm_infoframe)5574 static void intel_read_dp_hdr_metadata_infoframe_sdp(struct intel_encoder *encoder,
5575 struct intel_crtc_state *crtc_state,
5576 struct hdmi_drm_infoframe *drm_infoframe)
5577 {
5578 struct intel_display *display = to_intel_display(encoder);
5579 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
5580 unsigned int type = HDMI_PACKET_TYPE_GAMUT_METADATA;
5581 struct dp_sdp sdp = {};
5582 int ret;
5583
5584 if ((crtc_state->infoframes.enable &
5585 intel_hdmi_infoframe_enable(type)) == 0)
5586 return;
5587
5588 dig_port->read_infoframe(encoder, crtc_state, type, &sdp,
5589 sizeof(sdp));
5590
5591 ret = intel_dp_hdr_metadata_infoframe_sdp_unpack(drm_infoframe, &sdp,
5592 sizeof(sdp));
5593
5594 if (ret)
5595 drm_dbg_kms(display->drm,
5596 "Failed to unpack DP HDR Metadata Infoframe SDP\n");
5597 }
5598
intel_read_dp_sdp(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,unsigned int type)5599 void intel_read_dp_sdp(struct intel_encoder *encoder,
5600 struct intel_crtc_state *crtc_state,
5601 unsigned int type)
5602 {
5603 switch (type) {
5604 case DP_SDP_VSC:
5605 intel_read_dp_vsc_sdp(encoder, crtc_state,
5606 &crtc_state->infoframes.vsc);
5607 break;
5608 case HDMI_PACKET_TYPE_GAMUT_METADATA:
5609 intel_read_dp_hdr_metadata_infoframe_sdp(encoder, crtc_state,
5610 &crtc_state->infoframes.drm.drm);
5611 break;
5612 case DP_SDP_ADAPTIVE_SYNC:
5613 intel_read_dp_as_sdp(encoder, crtc_state,
5614 &crtc_state->infoframes.as_sdp);
5615 break;
5616 default:
5617 MISSING_CASE(type);
5618 break;
5619 }
5620 }
5621
5622 static void
intel_dp_mst_hpd_irq(struct intel_dp * intel_dp,u8 * esi,u8 * ack)5623 intel_dp_mst_hpd_irq(struct intel_dp *intel_dp, u8 *esi, u8 *ack)
5624 {
5625 bool handled = false;
5626
5627 drm_dp_mst_hpd_irq_handle_event(&intel_dp->mst.mgr, esi, ack, &handled);
5628
5629 if (esi[1] & DP_CP_IRQ) {
5630 intel_hdcp_handle_cp_irq(intel_dp->attached_connector);
5631 ack[1] |= DP_CP_IRQ;
5632 }
5633 }
5634
5635 static bool intel_dp_handle_link_service_irq(struct intel_dp *intel_dp, u8 irq_mask);
5636
5637 /**
5638 * intel_dp_check_mst_status - service any pending MST interrupts, check link status
5639 * @intel_dp: Intel DP struct
5640 *
5641 * Read any pending MST interrupts, call MST core to handle these and ack the
5642 * interrupts. Check if the main and AUX link state is ok.
5643 *
5644 * Returns:
5645 * - %true if pending interrupts were serviced (or no interrupts were
5646 * pending) w/o detecting an error condition.
5647 * - %false if an error condition - like AUX failure or a loss of link - is
5648 * detected, or another condition - like a DP tunnel BW state change - needs
5649 * servicing from the hotplug work.
5650 */
5651 static bool
intel_dp_check_mst_status(struct intel_dp * intel_dp)5652 intel_dp_check_mst_status(struct intel_dp *intel_dp)
5653 {
5654 struct intel_display *display = to_intel_display(intel_dp);
5655 bool force_retrain = intel_dp_link_training_get_force_retrain(intel_dp->link.training);
5656 bool reprobe_needed = false;
5657 int tries = 33;
5658
5659 while (--tries) {
5660 u8 esi[4] = {};
5661 u8 ack[4] = {};
5662 bool new_irqs;
5663
5664 if (!intel_dp_get_sink_irq_esi(intel_dp, esi)) {
5665 drm_dbg_kms(display->drm,
5666 "failed to get ESI - device may have failed\n");
5667 reprobe_needed = true;
5668
5669 break;
5670 }
5671
5672 drm_dbg_kms(display->drm, "DPRX ESI: %4ph\n", esi);
5673
5674 ack[3] |= esi[3] & INTEL_DP_LINK_SERVICE_IRQ_MASK_MST;
5675
5676 intel_dp_mst_hpd_irq(intel_dp, esi, ack);
5677
5678 new_irqs = !mem_is_zero(ack, sizeof(ack));
5679
5680 drm_WARN_ON(display->drm, ack[1] & ~INTEL_DP_DEVICE_SERVICE_IRQ_MASK_MST);
5681 drm_WARN_ON(display->drm, ack[3] & ~INTEL_DP_LINK_SERVICE_IRQ_MASK_MST);
5682
5683 if (new_irqs && !intel_dp_ack_sink_irq_esi(intel_dp, ack))
5684 drm_dbg_kms(display->drm, "Failed to ack ESI\n");
5685
5686 if (ack[1] & (DP_DOWN_REP_MSG_RDY | DP_UP_REQ_MSG_RDY))
5687 drm_dp_mst_hpd_irq_send_new_request(&intel_dp->mst.mgr);
5688
5689 if (force_retrain) {
5690 /* Defer forced retraining to the regular link status check. */
5691 ack[3] |= LINK_STATUS_CHANGED;
5692 force_retrain = false;
5693 }
5694
5695 if (intel_dp_handle_link_service_irq(intel_dp, ack[3]))
5696 reprobe_needed = true;
5697
5698 if (!new_irqs)
5699 break;
5700 }
5701
5702 if (!tries) {
5703 drm_dbg_kms(display->drm, "DPRX ESI not clearing, device may be stuck\n");
5704 reprobe_needed = true;
5705 }
5706
5707 return !reprobe_needed;
5708 }
5709
5710 static void
intel_dp_handle_hdmi_link_status_change(struct intel_dp * intel_dp)5711 intel_dp_handle_hdmi_link_status_change(struct intel_dp *intel_dp)
5712 {
5713 bool is_active;
5714 u8 buf = 0;
5715
5716 is_active = drm_dp_pcon_hdmi_link_active(&intel_dp->aux);
5717 if (intel_dp->frl.is_trained && !is_active) {
5718 if (drm_dp_dpcd_readb(&intel_dp->aux, DP_PCON_HDMI_LINK_CONFIG_1, &buf) < 0)
5719 return;
5720
5721 buf &= ~DP_PCON_ENABLE_HDMI_LINK;
5722 if (drm_dp_dpcd_writeb(&intel_dp->aux, DP_PCON_HDMI_LINK_CONFIG_1, buf) < 0)
5723 return;
5724
5725 drm_dp_pcon_hdmi_frl_link_error_count(&intel_dp->aux, &intel_dp->attached_connector->base);
5726
5727 intel_dp->frl.is_trained = false;
5728
5729 /* Restart FRL training or fall back to TMDS mode */
5730 intel_dp_check_frl_training(intel_dp);
5731 }
5732 }
5733
intel_dp_has_connector(struct intel_dp * intel_dp,const struct drm_connector_state * conn_state)5734 bool intel_dp_has_connector(struct intel_dp *intel_dp,
5735 const struct drm_connector_state *conn_state)
5736 {
5737 struct intel_display *display = to_intel_display(intel_dp);
5738 struct intel_encoder *encoder;
5739 enum pipe pipe;
5740
5741 if (!conn_state->best_encoder)
5742 return false;
5743
5744 /* SST */
5745 encoder = &dp_to_dig_port(intel_dp)->base;
5746 if (conn_state->best_encoder == &encoder->base)
5747 return true;
5748
5749 /* MST */
5750 for_each_pipe(display, pipe) {
5751 encoder = &intel_dp->mst.stream_encoders[pipe]->base;
5752 if (conn_state->best_encoder == &encoder->base)
5753 return true;
5754 }
5755
5756 return false;
5757 }
5758
wait_for_connector_hw_done(const struct drm_connector_state * conn_state)5759 static void wait_for_connector_hw_done(const struct drm_connector_state *conn_state)
5760 {
5761 struct intel_connector *connector = to_intel_connector(conn_state->connector);
5762 struct intel_display *display = to_intel_display(connector);
5763
5764 drm_modeset_lock_assert_held(&display->drm->mode_config.connection_mutex);
5765
5766 if (!conn_state->commit)
5767 return;
5768
5769 drm_WARN_ON(display->drm,
5770 !wait_for_completion_timeout(&conn_state->commit->hw_done,
5771 msecs_to_jiffies(5000)));
5772 }
5773
intel_dp_get_active_pipes(struct intel_dp * intel_dp,struct drm_modeset_acquire_ctx * ctx,u8 * pipe_mask)5774 int intel_dp_get_active_pipes(struct intel_dp *intel_dp,
5775 struct drm_modeset_acquire_ctx *ctx,
5776 u8 *pipe_mask)
5777 {
5778 struct intel_display *display = to_intel_display(intel_dp);
5779 struct drm_connector_list_iter conn_iter;
5780 struct intel_connector *connector;
5781 int ret = 0;
5782
5783 *pipe_mask = 0;
5784
5785 drm_connector_list_iter_begin(display->drm, &conn_iter);
5786 for_each_intel_connector_iter(connector, &conn_iter) {
5787 struct drm_connector_state *conn_state =
5788 connector->base.state;
5789 struct intel_crtc_state *crtc_state;
5790 struct intel_crtc *crtc;
5791
5792 if (!intel_dp_has_connector(intel_dp, conn_state))
5793 continue;
5794
5795 crtc = to_intel_crtc(conn_state->crtc);
5796 if (!crtc)
5797 continue;
5798
5799 ret = drm_modeset_lock(&crtc->base.mutex, ctx);
5800 if (ret)
5801 break;
5802
5803 crtc_state = to_intel_crtc_state(crtc->base.state);
5804
5805 drm_WARN_ON(display->drm,
5806 !intel_crtc_has_dp_encoder(crtc_state));
5807
5808 if (!crtc_state->hw.active)
5809 continue;
5810
5811 wait_for_connector_hw_done(conn_state);
5812
5813 *pipe_mask |= BIT(crtc->pipe);
5814 }
5815 drm_connector_list_iter_end(&conn_iter);
5816
5817 return ret;
5818 }
5819
intel_dp_flush_connector_commits(struct intel_connector * connector)5820 void intel_dp_flush_connector_commits(struct intel_connector *connector)
5821 {
5822 wait_for_connector_hw_done(connector->base.state);
5823 }
5824
intel_dp_handle_device_service_irq(struct intel_dp * intel_dp,u8 irq_mask)5825 static void intel_dp_handle_device_service_irq(struct intel_dp *intel_dp, u8 irq_mask)
5826 {
5827 struct intel_display *display = to_intel_display(intel_dp);
5828
5829 drm_WARN_ON(display->drm, irq_mask & ~INTEL_DP_DEVICE_SERVICE_IRQ_MASK_SST);
5830
5831 if (irq_mask & DP_AUTOMATED_TEST_REQUEST)
5832 intel_dp_test_request(intel_dp);
5833
5834 if (irq_mask & DP_CP_IRQ)
5835 intel_hdcp_handle_cp_irq(intel_dp->attached_connector);
5836
5837 if (irq_mask & DP_SINK_SPECIFIC_IRQ)
5838 drm_dbg_kms(display->drm, "Sink specific irq unhandled\n");
5839 }
5840
5841
5842 /*
5843 * Return %true if a full connector reprobe is required after handling a link
5844 * service IRQ event.
5845 */
intel_dp_handle_link_service_irq(struct intel_dp * intel_dp,u8 irq_mask)5846 static bool intel_dp_handle_link_service_irq(struct intel_dp *intel_dp, u8 irq_mask)
5847 {
5848 struct intel_display *display = to_intel_display(intel_dp);
5849 struct intel_connector *connector = intel_dp->attached_connector;
5850 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
5851 bool reprobe_needed = false;
5852
5853 drm_WARN_ON(display->drm, irq_mask & ~(INTEL_DP_LINK_SERVICE_IRQ_MASK_SST |
5854 INTEL_DP_LINK_SERVICE_IRQ_MASK_MST));
5855
5856 if (irq_mask & RX_CAP_CHANGED) {
5857 intel_dp->reset_link_params = true;
5858 reprobe_needed = true;
5859 }
5860
5861 if (irq_mask & LINK_STATUS_CHANGED)
5862 intel_dp_check_link_state(intel_dp);
5863
5864 if (irq_mask & HDMI_LINK_STATUS_CHANGED)
5865 intel_dp_handle_hdmi_link_status_change(intel_dp);
5866
5867 if (irq_mask & CONNECTED_OFF_ENTRY_REQUESTED)
5868 drm_dbg_kms(display->drm,
5869 "[CONNECTOR:%d:%s][ENCODER:%d:%s] Allowing connected off request\n",
5870 connector->base.base.id, connector->base.name,
5871 encoder->base.base.id, encoder->base.name);
5872
5873 if ((irq_mask & DP_TUNNELING_IRQ) &&
5874 drm_dp_tunnel_handle_irq(display->dp_tunnel_mgr,
5875 &intel_dp->aux))
5876 reprobe_needed = true;
5877
5878 return reprobe_needed;
5879 }
5880
5881 /*
5882 * According to DP spec
5883 * 5.1.2:
5884 * 1. Read DPCD
5885 * 2. Configure link according to Receiver Capabilities
5886 * 3. Use Link Training from 2.5.3.3 and 3.5.1.3
5887 * 4. Check link status on receipt of hot-plug interrupt
5888 *
5889 * intel_dp_short_pulse - handles short pulse interrupts
5890 * when full detection is not required.
5891 * Returns %true if short pulse is handled and full detection
5892 * is NOT required and %false otherwise.
5893 */
5894 static bool
intel_dp_short_pulse(struct intel_dp * intel_dp)5895 intel_dp_short_pulse(struct intel_dp *intel_dp)
5896 {
5897 bool reprobe_needed = false;
5898 u8 esi[4] = {};
5899
5900 intel_dp_test_reset(intel_dp);
5901
5902 if (!intel_dp_get_and_ack_sink_irq_esi_sst(intel_dp, esi))
5903 return false;
5904
5905 /*
5906 * If the current value of sink count doesn't match with
5907 * the value that was stored earlier we need to do full
5908 * detection.
5909 */
5910 if (intel_dp_has_sink_count(intel_dp) &&
5911 DP_GET_SINK_COUNT(esi[0]) != intel_dp->sink_count)
5912 /* No need to proceed if we are going to do full detect */
5913 return false;
5914
5915 intel_dp_handle_device_service_irq(intel_dp, esi[1]);
5916
5917 /*
5918 * Force checking the link status for DPCD_REV < 1.2
5919 * TODO: let the link status check depend on LINK_STATUS_CHANGED
5920 * or intel_dp->link.training.force_retrain for DPCD_REV >= 1.2
5921 */
5922 esi[3] |= LINK_STATUS_CHANGED;
5923 if (intel_dp_handle_link_service_irq(intel_dp, esi[3]))
5924 reprobe_needed = true;
5925
5926 /* Handle CEC interrupts, if any */
5927 drm_dp_cec_irq(&intel_dp->aux);
5928
5929 if (READ_ONCE(intel_dp->downstream_port_changed)) {
5930 WRITE_ONCE(intel_dp->downstream_port_changed, false);
5931 reprobe_needed = true;
5932 }
5933
5934 intel_psr_short_pulse(intel_dp);
5935
5936 if (intel_alpm_get_error(intel_dp)) {
5937 intel_alpm_disable(intel_dp);
5938 intel_dp->alpm.sink_alpm_error = true;
5939 }
5940
5941 if (intel_dp_test_short_pulse(intel_dp))
5942 reprobe_needed = true;
5943
5944 return !reprobe_needed;
5945 }
5946
5947 /* XXX this is probably wrong for multiple downstream ports */
5948 static enum drm_connector_status
intel_dp_detect_dpcd(struct intel_dp * intel_dp)5949 intel_dp_detect_dpcd(struct intel_dp *intel_dp)
5950 {
5951 struct intel_display *display = to_intel_display(intel_dp);
5952 struct intel_digital_port *dig_port = dp_to_dig_port(intel_dp);
5953 u8 *dpcd = intel_dp->dpcd;
5954 u8 type;
5955
5956 if (drm_WARN_ON(display->drm, intel_dp_is_edp(intel_dp)))
5957 return connector_status_connected;
5958
5959 WRITE_ONCE(intel_dp->downstream_port_changed, false);
5960
5961 intel_lspcon_resume(dig_port);
5962
5963 if (!intel_dp_get_dpcd(intel_dp))
5964 return connector_status_disconnected;
5965
5966 intel_dp->mst_detect = intel_dp_mst_detect(intel_dp);
5967
5968 /* if there's no downstream port, we're done */
5969 if (!drm_dp_is_branch(dpcd))
5970 return connector_status_connected;
5971
5972 /* If we're HPD-aware, SINK_COUNT changes dynamically */
5973 if (intel_dp_has_sink_count(intel_dp) &&
5974 intel_dp->downstream_ports[0] & DP_DS_PORT_HPD) {
5975 return intel_dp->sink_count ?
5976 connector_status_connected : connector_status_disconnected;
5977 }
5978
5979 if (intel_dp->mst_detect == DRM_DP_MST)
5980 return connector_status_connected;
5981
5982 /* If no HPD, poke DDC gently */
5983 if (drm_probe_ddc(&intel_dp->aux.ddc))
5984 return connector_status_connected;
5985
5986 /* Well we tried, say unknown for unreliable port types */
5987 if (intel_dp->dpcd[DP_DPCD_REV] >= 0x11) {
5988 type = intel_dp->downstream_ports[0] & DP_DS_PORT_TYPE_MASK;
5989 if (type == DP_DS_PORT_TYPE_VGA ||
5990 type == DP_DS_PORT_TYPE_NON_EDID)
5991 return connector_status_unknown;
5992 } else {
5993 type = intel_dp->dpcd[DP_DOWNSTREAMPORT_PRESENT] &
5994 DP_DWN_STRM_PORT_TYPE_MASK;
5995 if (type == DP_DWN_STRM_PORT_TYPE_ANALOG ||
5996 type == DP_DWN_STRM_PORT_TYPE_OTHER)
5997 return connector_status_unknown;
5998 }
5999
6000 /* Anything else is out of spec, warn and ignore */
6001 drm_dbg_kms(display->drm, "Broken DP branch device, ignoring\n");
6002 return connector_status_disconnected;
6003 }
6004
6005 static enum drm_connector_status
edp_detect(struct intel_dp * intel_dp)6006 edp_detect(struct intel_dp *intel_dp)
6007 {
6008 return connector_status_connected;
6009 }
6010
intel_digital_port_lock(struct intel_encoder * encoder)6011 void intel_digital_port_lock(struct intel_encoder *encoder)
6012 {
6013 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
6014
6015 if (dig_port->lock)
6016 dig_port->lock(dig_port);
6017 }
6018
intel_digital_port_unlock(struct intel_encoder * encoder)6019 void intel_digital_port_unlock(struct intel_encoder *encoder)
6020 {
6021 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
6022
6023 if (dig_port->unlock)
6024 dig_port->unlock(dig_port);
6025 }
6026
6027 /*
6028 * intel_digital_port_connected_locked - is the specified port connected?
6029 * @encoder: intel_encoder
6030 *
6031 * In cases where there's a connector physically connected but it can't be used
6032 * by our hardware we also return false, since the rest of the driver should
6033 * pretty much treat the port as disconnected. This is relevant for type-C
6034 * (starting on ICL) where there's ownership involved.
6035 *
6036 * The caller must hold the lock acquired by calling intel_digital_port_lock()
6037 * when calling this function.
6038 *
6039 * Return %true if port is connected, %false otherwise.
6040 */
intel_digital_port_connected_locked(struct intel_encoder * encoder)6041 bool intel_digital_port_connected_locked(struct intel_encoder *encoder)
6042 {
6043 struct intel_display *display = to_intel_display(encoder);
6044 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
6045 bool is_glitch_free = intel_tc_port_handles_hpd_glitches(dig_port);
6046 bool is_connected = false;
6047
6048 with_intel_display_power(display, POWER_DOMAIN_DISPLAY_CORE) {
6049 poll_timeout_us(is_connected = dig_port->connected(encoder),
6050 is_connected || is_glitch_free,
6051 30, 4000, false);
6052 }
6053
6054 return is_connected;
6055 }
6056
intel_digital_port_connected(struct intel_encoder * encoder)6057 bool intel_digital_port_connected(struct intel_encoder *encoder)
6058 {
6059 bool ret;
6060
6061 intel_digital_port_lock(encoder);
6062 ret = intel_digital_port_connected_locked(encoder);
6063 intel_digital_port_unlock(encoder);
6064
6065 return ret;
6066 }
6067
6068 static const struct drm_edid *
intel_dp_get_edid(struct intel_dp * intel_dp)6069 intel_dp_get_edid(struct intel_dp *intel_dp)
6070 {
6071 struct intel_connector *connector = intel_dp->attached_connector;
6072 const struct drm_edid *fixed_edid = connector->panel.fixed_edid;
6073
6074 /* Use panel fixed edid if we have one */
6075 if (fixed_edid) {
6076 /* invalid edid */
6077 if (IS_ERR(fixed_edid))
6078 return NULL;
6079
6080 return drm_edid_dup(fixed_edid);
6081 }
6082
6083 return drm_edid_read_ddc(&connector->base, &intel_dp->aux.ddc);
6084 }
6085
6086 static void
intel_dp_update_dfp(struct intel_dp * intel_dp,const struct drm_edid * drm_edid)6087 intel_dp_update_dfp(struct intel_dp *intel_dp,
6088 const struct drm_edid *drm_edid)
6089 {
6090 struct intel_display *display = to_intel_display(intel_dp);
6091 struct intel_connector *connector = intel_dp->attached_connector;
6092
6093 intel_dp->dfp.max_bpc =
6094 drm_dp_downstream_max_bpc(intel_dp->dpcd,
6095 intel_dp->downstream_ports, drm_edid);
6096
6097 intel_dp->dfp.max_dotclock =
6098 drm_dp_downstream_max_dotclock(intel_dp->dpcd,
6099 intel_dp->downstream_ports);
6100
6101 intel_dp->dfp.min_tmds_clock =
6102 drm_dp_downstream_min_tmds_clock(intel_dp->dpcd,
6103 intel_dp->downstream_ports,
6104 drm_edid);
6105 intel_dp->dfp.max_tmds_clock =
6106 drm_dp_downstream_max_tmds_clock(intel_dp->dpcd,
6107 intel_dp->downstream_ports,
6108 drm_edid);
6109
6110 intel_dp->dfp.pcon_max_frl_bw =
6111 drm_dp_get_pcon_max_frl_bw(intel_dp->dpcd,
6112 intel_dp->downstream_ports);
6113
6114 drm_dbg_kms(display->drm,
6115 "[CONNECTOR:%d:%s] DFP max bpc %d, max dotclock %d, TMDS clock %d-%d, PCON Max FRL BW %dGbps\n",
6116 connector->base.base.id, connector->base.name,
6117 intel_dp->dfp.max_bpc,
6118 intel_dp->dfp.max_dotclock,
6119 intel_dp->dfp.min_tmds_clock,
6120 intel_dp->dfp.max_tmds_clock,
6121 intel_dp->dfp.pcon_max_frl_bw);
6122
6123 intel_dp_get_pcon_dsc_cap(intel_dp);
6124 }
6125
6126 static bool
intel_dp_can_ycbcr420(struct intel_dp * intel_dp)6127 intel_dp_can_ycbcr420(struct intel_dp *intel_dp)
6128 {
6129 if (source_can_output(intel_dp, INTEL_OUTPUT_FORMAT_YCBCR420) &&
6130 (!drm_dp_is_branch(intel_dp->dpcd) || intel_dp->dfp.ycbcr420_passthrough))
6131 return true;
6132
6133 if (source_can_output(intel_dp, INTEL_OUTPUT_FORMAT_RGB) &&
6134 dfp_can_convert_from_rgb(intel_dp, INTEL_OUTPUT_FORMAT_YCBCR420))
6135 return true;
6136
6137 if (source_can_output(intel_dp, INTEL_OUTPUT_FORMAT_YCBCR444) &&
6138 dfp_can_convert_from_ycbcr444(intel_dp, INTEL_OUTPUT_FORMAT_YCBCR420))
6139 return true;
6140
6141 return false;
6142 }
6143
6144 static void
intel_dp_update_420(struct intel_dp * intel_dp)6145 intel_dp_update_420(struct intel_dp *intel_dp)
6146 {
6147 struct intel_display *display = to_intel_display(intel_dp);
6148 struct intel_connector *connector = intel_dp->attached_connector;
6149
6150 intel_dp->dfp.ycbcr420_passthrough =
6151 drm_dp_downstream_420_passthrough(intel_dp->dpcd,
6152 intel_dp->downstream_ports);
6153 /* on-board LSPCON always assumed to support 4:4:4->4:2:0 conversion */
6154 intel_dp->dfp.ycbcr_444_to_420 =
6155 intel_lspcon_active(dp_to_dig_port(intel_dp)) ||
6156 drm_dp_downstream_444_to_420_conversion(intel_dp->dpcd,
6157 intel_dp->downstream_ports);
6158 intel_dp->dfp.rgb_to_ycbcr =
6159 drm_dp_downstream_rgb_to_ycbcr_conversion(intel_dp->dpcd,
6160 intel_dp->downstream_ports,
6161 DP_DS_HDMI_BT709_RGB_YCBCR_CONV);
6162
6163 connector->base.ycbcr_420_allowed = intel_dp_can_ycbcr420(intel_dp);
6164
6165 drm_dbg_kms(display->drm,
6166 "[CONNECTOR:%d:%s] RGB->YcbCr conversion? %s, YCbCr 4:2:0 allowed? %s, YCbCr 4:4:4->4:2:0 conversion? %s\n",
6167 connector->base.base.id, connector->base.name,
6168 str_yes_no(intel_dp->dfp.rgb_to_ycbcr),
6169 str_yes_no(connector->base.ycbcr_420_allowed),
6170 str_yes_no(intel_dp->dfp.ycbcr_444_to_420));
6171 }
6172
6173 static void
intel_dp_set_edid(struct intel_dp * intel_dp)6174 intel_dp_set_edid(struct intel_dp *intel_dp)
6175 {
6176 struct intel_display *display = to_intel_display(intel_dp);
6177 struct intel_connector *connector = intel_dp->attached_connector;
6178 const struct drm_edid *drm_edid;
6179 bool vrr_capable;
6180
6181 intel_dp_unset_edid(intel_dp);
6182 drm_edid = intel_dp_get_edid(intel_dp);
6183 connector->detect_edid = drm_edid;
6184
6185 /* Below we depend on display info having been updated */
6186 drm_edid_connector_update(&connector->base, drm_edid);
6187
6188 vrr_capable = intel_vrr_is_capable(connector);
6189 drm_dbg_kms(display->drm, "[CONNECTOR:%d:%s] VRR capable: %s\n",
6190 connector->base.base.id, connector->base.name, str_yes_no(vrr_capable));
6191 drm_connector_set_vrr_capable_property(&connector->base, vrr_capable);
6192
6193 intel_dp_update_dfp(intel_dp, drm_edid);
6194 intel_dp_update_420(intel_dp);
6195
6196 drm_dp_cec_attach(&intel_dp->aux,
6197 connector->base.display_info.source_physical_address);
6198 }
6199
6200 static void
intel_dp_unset_edid(struct intel_dp * intel_dp)6201 intel_dp_unset_edid(struct intel_dp *intel_dp)
6202 {
6203 struct intel_connector *connector = intel_dp->attached_connector;
6204
6205 drm_dp_cec_unset_edid(&intel_dp->aux);
6206 drm_edid_free(connector->detect_edid);
6207 connector->detect_edid = NULL;
6208
6209 intel_dp->dfp.max_bpc = 0;
6210 intel_dp->dfp.max_dotclock = 0;
6211 intel_dp->dfp.min_tmds_clock = 0;
6212 intel_dp->dfp.max_tmds_clock = 0;
6213
6214 intel_dp->dfp.pcon_max_frl_bw = 0;
6215
6216 intel_dp->dfp.ycbcr_444_to_420 = false;
6217 connector->base.ycbcr_420_allowed = false;
6218
6219 drm_connector_set_vrr_capable_property(&connector->base,
6220 false);
6221 }
6222
6223 static bool
intel_dp_sink_supports_as_sdp_v2(struct intel_dp * intel_dp)6224 intel_dp_sink_supports_as_sdp_v2(struct intel_dp *intel_dp)
6225 {
6226 u8 rx_features;
6227
6228 /*
6229 * The DP spec does not explicitly provide the AS SDP v2 capability.
6230 * So based on the DP v2.1 SCR, we infer it from the following bits:
6231 *
6232 * DP_AS_SDP_FAVT_PAYLOAD_FIELDS_PARSING_SUPPORTED indicates support for
6233 * FAVT, which is explicitly defined to use AS SDP v2.
6234 *
6235 * DP_ASYNC_VIDEO_TIMING_NOT_SUPPORTED_IN_PR indicates that the sink
6236 * does not support asynchronous video timing while in PR Active,
6237 * requiring the source to keep transmitting Adaptive-Sync SDPs. The
6238 * spec mandates that such sinks shall support AS SDP v2.
6239 *
6240 * #TODO: Check the Adaptive-Sync DisplayID 2.1 block once DisplayID
6241 * parsing is available. This may help detect AS SDP v2 support for
6242 * native DP 2.1 sinks that do not expose FAVT or PR-based capability
6243 * bits.
6244 *
6245 * In the presence of PCONs, check PCON support from DPCD and sink
6246 * support from Display ID.
6247 */
6248
6249 if (drm_dp_dpcd_read_byte(&intel_dp->aux,
6250 DP_DPRX_FEATURE_ENUMERATION_LIST_CONT_1,
6251 &rx_features) == 1) {
6252 if (rx_features & DP_AS_SDP_FAVT_PAYLOAD_FIELDS_PARSING_SUPPORTED)
6253 return true;
6254 }
6255
6256 if (intel_dp->psr.sink_panel_replay_support &&
6257 !intel_psr_pr_async_video_timing_supported(intel_dp))
6258 return true;
6259
6260 return false;
6261 }
6262
6263 static void
intel_dp_detect_sdp_caps(struct intel_dp * intel_dp)6264 intel_dp_detect_sdp_caps(struct intel_dp *intel_dp)
6265 {
6266 struct intel_display *display = to_intel_display(intel_dp);
6267
6268 intel_dp->as_sdp_supported = HAS_AS_SDP(display) &&
6269 drm_dp_as_sdp_supported(&intel_dp->aux, intel_dp->dpcd);
6270
6271 if (!intel_dp->as_sdp_supported)
6272 return;
6273
6274 /* eDP Adaptive-Sync SDP always uses AS SDP v2 */
6275 if (intel_dp_is_edp(intel_dp))
6276 intel_dp->as_sdp_v2_supported = true;
6277 else
6278 intel_dp->as_sdp_v2_supported = intel_dp_sink_supports_as_sdp_v2(intel_dp);
6279 }
6280
intel_dp_needs_dpcd_probe(struct intel_dp * intel_dp,bool force_on_external)6281 static bool intel_dp_needs_dpcd_probe(struct intel_dp *intel_dp, bool force_on_external)
6282 {
6283 struct intel_connector *connector = intel_dp->attached_connector;
6284
6285 if (intel_dp_is_edp(intel_dp))
6286 return false;
6287
6288 if (force_on_external)
6289 return true;
6290
6291 if (intel_dp->is_mst)
6292 return false;
6293
6294 return drm_edid_has_quirk(&connector->base, DRM_EDID_QUIRK_DP_DPCD_PROBE);
6295 }
6296
intel_dp_dpcd_set_probe(struct intel_dp * intel_dp,bool force_on_external)6297 void intel_dp_dpcd_set_probe(struct intel_dp *intel_dp, bool force_on_external)
6298 {
6299 drm_dp_dpcd_set_probe(&intel_dp->aux,
6300 intel_dp_needs_dpcd_probe(intel_dp, force_on_external));
6301 }
6302
6303 static int
intel_dp_detect(struct drm_connector * _connector,struct drm_modeset_acquire_ctx * ctx,bool force)6304 intel_dp_detect(struct drm_connector *_connector,
6305 struct drm_modeset_acquire_ctx *ctx,
6306 bool force)
6307 {
6308 struct intel_display *display = to_intel_display(_connector->dev);
6309 struct intel_connector *connector = to_intel_connector(_connector);
6310 struct intel_dp *intel_dp = intel_attached_dp(connector);
6311 struct intel_digital_port *dig_port = dp_to_dig_port(intel_dp);
6312 struct intel_encoder *encoder = &dig_port->base;
6313 enum drm_connector_status status;
6314 int ret;
6315
6316 drm_dbg_kms(display->drm, "[CONNECTOR:%d:%s]\n",
6317 connector->base.base.id, connector->base.name);
6318 drm_WARN_ON(display->drm,
6319 !drm_modeset_is_locked(&display->drm->mode_config.connection_mutex));
6320
6321 if (!intel_display_device_enabled(display))
6322 return connector_status_disconnected;
6323
6324 if (!intel_display_driver_check_access(display))
6325 return connector->base.status;
6326
6327 intel_dp_flush_connector_commits(connector);
6328
6329 intel_pps_vdd_on(intel_dp);
6330
6331 /* Can't disconnect eDP */
6332 if (intel_dp_is_edp(intel_dp))
6333 status = edp_detect(intel_dp);
6334 else if (intel_digital_port_connected(encoder))
6335 status = intel_dp_detect_dpcd(intel_dp);
6336 else
6337 status = connector_status_disconnected;
6338
6339 if (status != connector_status_disconnected &&
6340 !intel_dp_mst_verify_dpcd_state(intel_dp))
6341 /*
6342 * This requires retrying detection for instance to re-enable
6343 * the MST mode that got reset via a long HPD pulse. The retry
6344 * will happen either via the hotplug handler's retry logic,
6345 * ensured by setting the connector here to SST/disconnected,
6346 * or via a userspace connector probing in response to the
6347 * hotplug uevent sent when removing the MST connectors.
6348 */
6349 status = connector_status_disconnected;
6350
6351 if (status == connector_status_disconnected) {
6352 intel_dp_test_reset(intel_dp);
6353 /*
6354 * FIXME: Resetting these caps here cause
6355 * state computation fail if the connector need to be
6356 * modeset after sink disconnect. Move resetting them
6357 * to where new sink is connected.
6358 */
6359 memset(connector->dp.dsc_dpcd, 0, sizeof(connector->dp.dsc_dpcd));
6360 memset(connector->dp.panel_replay_caps.dpcd, 0,
6361 sizeof(connector->dp.panel_replay_caps.dpcd));
6362 intel_dp->psr.sink_panel_replay_support = false;
6363 connector->dp.panel_replay_caps.support = false;
6364 connector->dp.panel_replay_caps.su_support = false;
6365 connector->dp.panel_replay_caps.dsc_support =
6366 INTEL_DP_PANEL_REPLAY_DSC_NOT_SUPPORTED;
6367
6368 intel_dp_mst_disconnect(intel_dp);
6369
6370 intel_dp_tunnel_disconnect(intel_dp);
6371
6372 intel_dp_tunnel_uhbr_lanes_wa_reset(intel_dp);
6373
6374 goto out_unset_edid;
6375 }
6376
6377 intel_dp_init_source_oui(intel_dp);
6378
6379 ret = intel_dp_tunnel_detect(intel_dp, ctx);
6380 if (ret == -EDEADLK) {
6381 status = ret;
6382
6383 goto out_vdd_off;
6384 }
6385
6386 if (ret == 1)
6387 connector->base.epoch_counter++;
6388
6389 if (!intel_dp_is_edp(intel_dp))
6390 intel_psr_init_dpcd(intel_dp, connector);
6391
6392 intel_dp_detect_dsc_caps(intel_dp, connector);
6393
6394 intel_dp_detect_sdp_caps(intel_dp);
6395
6396 if (intel_dp->reset_link_params) {
6397 intel_dp_reset_link_params(intel_dp);
6398 intel_dp->reset_link_params = false;
6399 }
6400
6401 intel_dp_mst_configure(intel_dp);
6402
6403 intel_dp_print_rates(intel_dp);
6404
6405 if (intel_dp->is_mst) {
6406 /*
6407 * If we are in MST mode then this connector
6408 * won't appear connected or have anything
6409 * with EDID on it
6410 */
6411 status = connector_status_disconnected;
6412 goto out_unset_edid;
6413 }
6414
6415 /*
6416 * Some external monitors do not signal loss of link synchronization
6417 * with an IRQ_HPD, so force a link status check.
6418 *
6419 * TODO: this probably became redundant, so remove it: the link state
6420 * is rechecked/recovered now after modesets, where the loss of
6421 * synchronization tends to occur.
6422 */
6423 if (!intel_dp_is_edp(intel_dp))
6424 intel_dp_check_link_state(intel_dp);
6425
6426 /*
6427 * Clearing NACK and defer counts to get their exact values
6428 * while reading EDID which are required by Compliance tests
6429 * 4.2.2.4 and 4.2.2.5
6430 */
6431 intel_dp->aux.i2c_nack_count = 0;
6432 intel_dp->aux.i2c_defer_count = 0;
6433
6434 intel_dp_set_edid(intel_dp);
6435 if (intel_dp_is_edp(intel_dp) || connector->detect_edid)
6436 status = connector_status_connected;
6437
6438 if (intel_dp_tunnel_uhbr_lanes_wa_setup(intel_dp))
6439 intel_dp_tunnel_uhbr_lanes_wa_apply(intel_dp);
6440
6441 out_unset_edid:
6442 if (status != connector_status_connected && !intel_dp->is_mst)
6443 intel_dp_unset_edid(intel_dp);
6444
6445 intel_dp_dpcd_set_probe(intel_dp, false);
6446
6447 if (!intel_dp_is_edp(intel_dp))
6448 drm_dp_set_subconnector_property(&connector->base,
6449 status,
6450 intel_dp->dpcd,
6451 intel_dp->downstream_ports);
6452 out_vdd_off:
6453 intel_pps_vdd_off(intel_dp);
6454
6455 return status;
6456 }
6457
6458 static void
intel_dp_force(struct drm_connector * _connector)6459 intel_dp_force(struct drm_connector *_connector)
6460 {
6461 struct intel_connector *connector = to_intel_connector(_connector);
6462 struct intel_display *display = to_intel_display(connector);
6463 struct intel_dp *intel_dp = intel_attached_dp(connector);
6464
6465 drm_dbg_kms(display->drm, "[CONNECTOR:%d:%s]\n",
6466 connector->base.base.id, connector->base.name);
6467
6468 if (!intel_display_driver_check_access(display))
6469 return;
6470
6471 intel_dp_unset_edid(intel_dp);
6472
6473 if (connector->base.status != connector_status_connected)
6474 return;
6475
6476 intel_dp_set_edid(intel_dp);
6477
6478 intel_dp_dpcd_set_probe(intel_dp, false);
6479 }
6480
intel_dp_get_modes(struct drm_connector * _connector)6481 static int intel_dp_get_modes(struct drm_connector *_connector)
6482 {
6483 struct intel_display *display = to_intel_display(_connector->dev);
6484 struct intel_connector *connector = to_intel_connector(_connector);
6485 struct intel_dp *intel_dp = intel_attached_dp(connector);
6486 int num_modes;
6487
6488 /* drm_edid_connector_update() done in ->detect() or ->force() */
6489 num_modes = drm_edid_connector_add_modes(&connector->base);
6490
6491 /* Also add fixed mode, which may or may not be present in EDID */
6492 if (intel_dp_is_edp(intel_dp))
6493 num_modes += intel_panel_get_modes(connector);
6494
6495 if (num_modes)
6496 return num_modes;
6497
6498 if (!connector->detect_edid) {
6499 struct drm_display_mode *mode;
6500
6501 mode = drm_dp_downstream_mode(display->drm,
6502 intel_dp->dpcd,
6503 intel_dp->downstream_ports);
6504 if (mode) {
6505 drm_mode_probed_add(&connector->base, mode);
6506 num_modes++;
6507 }
6508 }
6509
6510 return num_modes;
6511 }
6512
6513 static int
intel_dp_connector_register(struct drm_connector * _connector)6514 intel_dp_connector_register(struct drm_connector *_connector)
6515 {
6516 struct intel_connector *connector = to_intel_connector(_connector);
6517 struct intel_display *display = to_intel_display(connector);
6518 struct intel_dp *intel_dp = intel_attached_dp(connector);
6519 struct intel_digital_port *dig_port = dp_to_dig_port(intel_dp);
6520 int ret;
6521
6522 ret = intel_connector_register(&connector->base);
6523 if (ret)
6524 return ret;
6525
6526 drm_dbg_kms(display->drm, "registering %s bus for %s\n",
6527 intel_dp->aux.name, connector->base.kdev->kobj.name);
6528
6529 intel_dp->aux.dev = connector->base.kdev;
6530 ret = drm_dp_aux_register(&intel_dp->aux);
6531 if (!ret)
6532 drm_dp_cec_register_connector(&intel_dp->aux, &connector->base);
6533
6534 if (!intel_bios_encoder_is_lspcon(dig_port->base.devdata))
6535 return ret;
6536
6537 /*
6538 * ToDo: Clean this up to handle lspcon init and resume more
6539 * efficiently and streamlined.
6540 */
6541 if (intel_lspcon_init(dig_port)) {
6542 if (intel_lspcon_detect_hdr_capability(dig_port))
6543 drm_connector_attach_hdr_output_metadata_property(&connector->base);
6544 }
6545
6546 return ret;
6547 }
6548
6549 static void
intel_dp_connector_unregister(struct drm_connector * _connector)6550 intel_dp_connector_unregister(struct drm_connector *_connector)
6551 {
6552 struct intel_connector *connector = to_intel_connector(_connector);
6553 struct intel_dp *intel_dp = intel_attached_dp(connector);
6554
6555 drm_dp_cec_unregister_connector(&intel_dp->aux);
6556 drm_dp_aux_unregister(&intel_dp->aux);
6557 intel_connector_unregister(&connector->base);
6558 }
6559
intel_dp_connector_sync_state(struct intel_connector * connector,const struct intel_crtc_state * crtc_state)6560 void intel_dp_connector_sync_state(struct intel_connector *connector,
6561 const struct intel_crtc_state *crtc_state)
6562 {
6563 struct intel_display *display = to_intel_display(connector);
6564
6565 if (crtc_state && crtc_state->dsc.compression_enable) {
6566 drm_WARN_ON(display->drm,
6567 !connector->dp.dsc_decompression_aux);
6568 connector->dp.dsc_decompression_enabled = true;
6569 } else {
6570 connector->dp.dsc_decompression_enabled = false;
6571 }
6572 }
6573
intel_dp_encoder_flush_work(struct drm_encoder * _encoder)6574 void intel_dp_encoder_flush_work(struct drm_encoder *_encoder)
6575 {
6576 struct intel_encoder *encoder = to_intel_encoder(_encoder);
6577 struct intel_digital_port *dig_port = enc_to_dig_port(encoder);
6578 struct intel_dp *intel_dp = &dig_port->dp;
6579
6580 intel_encoder_link_check_flush_work(encoder);
6581
6582 intel_dp_mst_encoder_cleanup(dig_port);
6583
6584 intel_dp_tunnel_destroy(intel_dp);
6585
6586 intel_pps_vdd_off_sync(intel_dp);
6587
6588 /*
6589 * Ensure power off delay is respected on module remove, so that we can
6590 * reduce delays at driver probe. See pps_init_timestamps().
6591 */
6592 intel_pps_wait_power_cycle(intel_dp);
6593
6594 intel_dp_aux_fini(intel_dp);
6595 }
6596
intel_dp_encoder_suspend(struct intel_encoder * encoder)6597 void intel_dp_encoder_suspend(struct intel_encoder *encoder)
6598 {
6599 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
6600
6601 intel_pps_vdd_off_sync(intel_dp);
6602
6603 intel_dp_tunnel_suspend(intel_dp);
6604 }
6605
intel_dp_encoder_shutdown(struct intel_encoder * encoder)6606 void intel_dp_encoder_shutdown(struct intel_encoder *encoder)
6607 {
6608 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
6609
6610 intel_pps_wait_power_cycle(intel_dp);
6611 }
6612
intel_modeset_tile_group(struct intel_atomic_state * state,int tile_group_id)6613 static int intel_modeset_tile_group(struct intel_atomic_state *state,
6614 int tile_group_id)
6615 {
6616 struct intel_display *display = to_intel_display(state);
6617 struct drm_connector_list_iter conn_iter;
6618 struct intel_connector *connector;
6619 int ret = 0;
6620
6621 drm_connector_list_iter_begin(display->drm, &conn_iter);
6622 for_each_intel_connector_iter(connector, &conn_iter) {
6623 struct drm_connector_state *conn_state;
6624 struct intel_crtc_state *crtc_state;
6625 struct intel_crtc *crtc;
6626
6627 if (!connector->base.has_tile ||
6628 connector->base.tile_group->id != tile_group_id)
6629 continue;
6630
6631 conn_state = drm_atomic_get_connector_state(&state->base,
6632 &connector->base);
6633 if (IS_ERR(conn_state)) {
6634 ret = PTR_ERR(conn_state);
6635 break;
6636 }
6637
6638 crtc = to_intel_crtc(conn_state->crtc);
6639
6640 if (!crtc)
6641 continue;
6642
6643 crtc_state = intel_atomic_get_new_crtc_state(state, crtc);
6644 crtc_state->uapi.mode_changed = true;
6645
6646 ret = drm_atomic_add_affected_planes(&state->base, &crtc->base);
6647 if (ret)
6648 break;
6649 }
6650 drm_connector_list_iter_end(&conn_iter);
6651
6652 return ret;
6653 }
6654
intel_modeset_affected_transcoders(struct intel_atomic_state * state,u16 transcoders)6655 static int intel_modeset_affected_transcoders(struct intel_atomic_state *state, u16 transcoders)
6656 {
6657 struct intel_display *display = to_intel_display(state);
6658 struct intel_crtc *crtc;
6659
6660 if (transcoders == 0)
6661 return 0;
6662
6663 for_each_intel_crtc(display, crtc) {
6664 struct intel_crtc_state *crtc_state;
6665 int ret;
6666
6667 crtc_state = intel_atomic_get_crtc_state(&state->base, crtc);
6668 if (IS_ERR(crtc_state))
6669 return PTR_ERR(crtc_state);
6670
6671 if (!crtc_state->hw.enable)
6672 continue;
6673
6674 if (!(transcoders & BIT(crtc_state->cpu_transcoder)))
6675 continue;
6676
6677 crtc_state->uapi.mode_changed = true;
6678
6679 ret = drm_atomic_add_affected_connectors(&state->base, &crtc->base);
6680 if (ret)
6681 return ret;
6682
6683 ret = drm_atomic_add_affected_planes(&state->base, &crtc->base);
6684 if (ret)
6685 return ret;
6686
6687 transcoders &= ~BIT(crtc_state->cpu_transcoder);
6688 }
6689
6690 drm_WARN_ON(display->drm, transcoders != 0);
6691
6692 return 0;
6693 }
6694
intel_modeset_synced_crtcs(struct intel_atomic_state * state,struct drm_connector * _connector)6695 static int intel_modeset_synced_crtcs(struct intel_atomic_state *state,
6696 struct drm_connector *_connector)
6697 {
6698 struct intel_connector *connector = to_intel_connector(_connector);
6699 const struct drm_connector_state *old_conn_state =
6700 drm_atomic_get_old_connector_state(&state->base, &connector->base);
6701 const struct intel_crtc_state *old_crtc_state;
6702 struct intel_crtc *crtc;
6703 u16 transcoders;
6704
6705 crtc = to_intel_crtc(old_conn_state->crtc);
6706 if (!crtc)
6707 return 0;
6708
6709 old_crtc_state = intel_atomic_get_old_crtc_state(state, crtc);
6710
6711 if (!old_crtc_state->hw.active)
6712 return 0;
6713
6714 transcoders = old_crtc_state->sync_mode_slaves_mask;
6715 if (old_crtc_state->master_transcoder != INVALID_TRANSCODER)
6716 transcoders |= BIT(old_crtc_state->master_transcoder);
6717
6718 return intel_modeset_affected_transcoders(state,
6719 transcoders);
6720 }
6721
intel_dp_connector_atomic_check(struct drm_connector * _connector,struct drm_atomic_commit * _state)6722 static int intel_dp_connector_atomic_check(struct drm_connector *_connector,
6723 struct drm_atomic_commit *_state)
6724 {
6725 struct intel_connector *connector = to_intel_connector(_connector);
6726 struct intel_display *display = to_intel_display(connector);
6727 struct intel_atomic_state *state = to_intel_atomic_state(_state);
6728 struct drm_connector_state *conn_state =
6729 drm_atomic_get_new_connector_state(_state, &connector->base);
6730 struct intel_dp *intel_dp = enc_to_intel_dp(connector->encoder);
6731 int ret;
6732
6733 ret = intel_digital_connector_atomic_check(&connector->base, &state->base);
6734 if (ret)
6735 return ret;
6736
6737 if (intel_dp_mst_source_support(intel_dp)) {
6738 ret = drm_dp_mst_root_conn_atomic_check(conn_state, &intel_dp->mst.mgr);
6739 if (ret)
6740 return ret;
6741 }
6742
6743 if (!intel_connector_needs_modeset(state, &connector->base))
6744 return 0;
6745
6746 ret = intel_dp_tunnel_atomic_check_state(state,
6747 intel_dp,
6748 connector);
6749 if (ret)
6750 return ret;
6751
6752 /*
6753 * We don't enable port sync on BDW due to missing w/as and
6754 * due to not having adjusted the modeset sequence appropriately.
6755 */
6756 if (DISPLAY_VER(display) < 9)
6757 return 0;
6758
6759 if (connector->base.has_tile) {
6760 ret = intel_modeset_tile_group(state, connector->base.tile_group->id);
6761 if (ret)
6762 return ret;
6763 }
6764
6765 return intel_modeset_synced_crtcs(state, &connector->base);
6766 }
6767
intel_dp_oob_hotplug_event(struct drm_connector * _connector,enum drm_connector_status hpd_state)6768 static void intel_dp_oob_hotplug_event(struct drm_connector *_connector,
6769 enum drm_connector_status hpd_state)
6770 {
6771 struct intel_connector *connector = to_intel_connector(_connector);
6772 struct intel_display *display = to_intel_display(connector);
6773 struct intel_encoder *encoder = intel_attached_encoder(connector);
6774 bool hpd_high = hpd_state == connector_status_connected;
6775 unsigned int hpd_pin = encoder->hpd_pin;
6776 bool need_work = false;
6777
6778 spin_lock_irq(&display->irq.lock);
6779 if (hpd_high != test_bit(hpd_pin, &display->hotplug.oob_hotplug_last_state)) {
6780 display->hotplug.event_bits |= BIT(hpd_pin);
6781
6782 __assign_bit(hpd_pin,
6783 &display->hotplug.oob_hotplug_last_state,
6784 hpd_high);
6785 need_work = true;
6786 }
6787 spin_unlock_irq(&display->irq.lock);
6788
6789 if (need_work)
6790 intel_hpd_schedule_detection(display);
6791 }
6792
6793 static const struct drm_connector_funcs intel_dp_connector_funcs = {
6794 .force = intel_dp_force,
6795 .fill_modes = drm_helper_probe_single_connector_modes,
6796 .atomic_get_property = intel_digital_connector_atomic_get_property,
6797 .atomic_set_property = intel_digital_connector_atomic_set_property,
6798 .late_register = intel_dp_connector_register,
6799 .early_unregister = intel_dp_connector_unregister,
6800 .destroy = intel_connector_destroy,
6801 .atomic_destroy_state = drm_atomic_helper_connector_destroy_state,
6802 .atomic_duplicate_state = intel_digital_connector_duplicate_state,
6803 .oob_hotplug_event = intel_dp_oob_hotplug_event,
6804 };
6805
6806 static const struct drm_connector_helper_funcs intel_dp_connector_helper_funcs = {
6807 .detect_ctx = intel_dp_detect,
6808 .get_modes = intel_dp_get_modes,
6809 .mode_valid = intel_dp_mode_valid,
6810 .atomic_check = intel_dp_connector_atomic_check,
6811 };
6812
6813 enum irqreturn
intel_dp_hpd_pulse(struct intel_digital_port * dig_port,bool long_hpd)6814 intel_dp_hpd_pulse(struct intel_digital_port *dig_port, bool long_hpd)
6815 {
6816 struct intel_display *display = to_intel_display(dig_port);
6817 struct intel_dp *intel_dp = &dig_port->dp;
6818 u8 dpcd[DP_RECEIVER_CAP_SIZE];
6819
6820 if (dig_port->base.type == INTEL_OUTPUT_EDP &&
6821 (long_hpd ||
6822 intel_display_rpm_suspended(display) ||
6823 !intel_pps_have_panel_power_or_vdd(intel_dp))) {
6824 /*
6825 * vdd off can generate a long/short pulse on eDP which
6826 * would require vdd on to handle it, and thus we
6827 * would end up in an endless cycle of
6828 * "vdd off -> long/short hpd -> vdd on -> detect -> vdd off -> ..."
6829 */
6830 drm_dbg_kms(display->drm,
6831 "ignoring %s hpd on eDP [ENCODER:%d:%s]\n",
6832 long_hpd ? "long" : "short",
6833 dig_port->base.base.base.id,
6834 dig_port->base.base.name);
6835 return IRQ_HANDLED;
6836 }
6837
6838 drm_dbg_kms(display->drm, "got hpd irq on [ENCODER:%d:%s] - %s\n",
6839 dig_port->base.base.base.id,
6840 dig_port->base.base.name,
6841 long_hpd ? "long" : "short");
6842
6843 /*
6844 * TBT DP tunnels require the GFX driver to read out the DPRX caps in
6845 * response to long HPD pulses. The DP hotplug handler does that,
6846 * however the hotplug handler may be blocked by another
6847 * connector's/encoder's hotplug handler. Since the TBT CM may not
6848 * complete the DP tunnel BW request for the latter connector/encoder
6849 * waiting for this encoder's DPRX read, perform a dummy read here.
6850 */
6851 if (long_hpd) {
6852 intel_dp_dpcd_set_probe(intel_dp, true);
6853
6854 intel_dp_read_dprx_caps(intel_dp, dpcd);
6855
6856 intel_dp->reset_link_params = true;
6857 intel_dp_invalidate_source_oui(intel_dp);
6858
6859 return IRQ_NONE;
6860 }
6861
6862 if (intel_dp->is_mst) {
6863 if (!intel_dp_check_mst_status(intel_dp))
6864 return IRQ_NONE;
6865 } else if (!intel_dp_short_pulse(intel_dp)) {
6866 return IRQ_NONE;
6867 }
6868
6869 return IRQ_HANDLED;
6870 }
6871
_intel_dp_is_port_edp(struct intel_display * display,const struct intel_bios_encoder_data * devdata,enum port port)6872 static bool _intel_dp_is_port_edp(struct intel_display *display,
6873 const struct intel_bios_encoder_data *devdata,
6874 enum port port)
6875 {
6876 /*
6877 * eDP not supported on g4x. so bail out early just
6878 * for a bit extra safety in case the VBT is bonkers.
6879 */
6880 if (DISPLAY_VER(display) < 5)
6881 return false;
6882
6883 if (DISPLAY_VER(display) < 9 && port == PORT_A)
6884 return true;
6885
6886 return devdata && intel_bios_encoder_supports_edp(devdata);
6887 }
6888
intel_dp_is_port_edp(struct intel_display * display,enum port port)6889 bool intel_dp_is_port_edp(struct intel_display *display, enum port port)
6890 {
6891 const struct intel_bios_encoder_data *devdata =
6892 intel_bios_encoder_data_lookup(display, port);
6893
6894 return _intel_dp_is_port_edp(display, devdata, port);
6895 }
6896
6897 bool
intel_dp_has_gamut_metadata_dip(struct intel_encoder * encoder)6898 intel_dp_has_gamut_metadata_dip(struct intel_encoder *encoder)
6899 {
6900 struct intel_display *display = to_intel_display(encoder);
6901 enum port port = encoder->port;
6902
6903 if (intel_bios_encoder_is_lspcon(encoder->devdata))
6904 return false;
6905
6906 if (DISPLAY_VER(display) >= 11)
6907 return true;
6908
6909 if (port == PORT_A)
6910 return false;
6911
6912 if (display->platform.haswell || display->platform.broadwell ||
6913 DISPLAY_VER(display) >= 9)
6914 return true;
6915
6916 return false;
6917 }
6918
6919 static void
intel_dp_add_properties(struct intel_dp * intel_dp,struct drm_connector * _connector)6920 intel_dp_add_properties(struct intel_dp *intel_dp, struct drm_connector *_connector)
6921 {
6922 struct intel_connector *connector = to_intel_connector(_connector);
6923 struct intel_display *display = to_intel_display(intel_dp);
6924 enum port port = dp_to_dig_port(intel_dp)->base.port;
6925
6926 if (!intel_dp_is_edp(intel_dp))
6927 drm_connector_attach_dp_subconnector_property(&connector->base);
6928
6929 if (!display->platform.g4x && port != PORT_A)
6930 intel_attach_force_audio_property(&connector->base);
6931
6932 intel_attach_broadcast_rgb_property(&connector->base);
6933 if (HAS_GMCH(display))
6934 drm_connector_attach_max_bpc_property(&connector->base, 6, 10);
6935 else if (DISPLAY_VER(display) >= 5)
6936 drm_connector_attach_max_bpc_property(&connector->base, 6, 12);
6937
6938 /* Register HDMI colorspace for case of lspcon */
6939 if (intel_bios_encoder_is_lspcon(dp_to_dig_port(intel_dp)->base.devdata)) {
6940 drm_connector_attach_content_type_property(&connector->base);
6941 intel_attach_hdmi_colorspace_property(&connector->base);
6942 } else {
6943 intel_attach_dp_colorspace_property(&connector->base);
6944 }
6945
6946 if (intel_dp_has_gamut_metadata_dip(&dp_to_dig_port(intel_dp)->base))
6947 drm_connector_attach_hdr_output_metadata_property(&connector->base);
6948
6949 if (HAS_VRR(display))
6950 drm_connector_attach_vrr_capable_property(&connector->base);
6951 }
6952
6953 static void
intel_edp_add_properties(struct intel_dp * intel_dp)6954 intel_edp_add_properties(struct intel_dp *intel_dp)
6955 {
6956 struct intel_display *display = to_intel_display(intel_dp);
6957 struct intel_connector *connector = intel_dp->attached_connector;
6958 const struct drm_display_mode *fixed_mode =
6959 intel_panel_preferred_fixed_mode(connector);
6960
6961 intel_attach_scaling_mode_property(&connector->base);
6962
6963 drm_connector_set_panel_orientation_with_quirk(&connector->base,
6964 display->vbt.orientation,
6965 fixed_mode->hdisplay,
6966 fixed_mode->vdisplay);
6967 }
6968
intel_edp_backlight_setup(struct intel_dp * intel_dp,struct intel_connector * connector)6969 static void intel_edp_backlight_setup(struct intel_dp *intel_dp,
6970 struct intel_connector *connector)
6971 {
6972 struct intel_display *display = to_intel_display(intel_dp);
6973 enum pipe pipe = INVALID_PIPE;
6974
6975 if (display->platform.valleyview || display->platform.cherryview)
6976 pipe = vlv_pps_backlight_initial_pipe(intel_dp);
6977
6978 intel_backlight_setup(connector, pipe);
6979 }
6980
intel_edp_init_connector(struct intel_dp * intel_dp,struct intel_connector * connector)6981 static bool intel_edp_init_connector(struct intel_dp *intel_dp,
6982 struct intel_connector *connector)
6983 {
6984 struct intel_display *display = to_intel_display(intel_dp);
6985 struct drm_display_mode *fixed_mode;
6986 struct intel_encoder *encoder = &dp_to_dig_port(intel_dp)->base;
6987 bool has_dpcd;
6988 const struct drm_edid *drm_edid;
6989
6990 if (!intel_dp_is_edp(intel_dp))
6991 return true;
6992
6993 /*
6994 * On IBX/CPT we may get here with LVDS already registered. Since the
6995 * driver uses the only internal power sequencer available for both
6996 * eDP and LVDS bail out early in this case to prevent interfering
6997 * with an already powered-on LVDS power sequencer.
6998 */
6999 if (intel_get_lvds_encoder(display)) {
7000 drm_WARN_ON(display->drm,
7001 !(HAS_PCH_IBX(display) || HAS_PCH_CPT(display)));
7002 drm_info(display->drm,
7003 "LVDS was detected, not registering eDP\n");
7004
7005 return false;
7006 }
7007
7008 intel_bios_init_panel_early(display, &connector->panel,
7009 encoder->devdata);
7010
7011 if (!intel_pps_init(intel_dp)) {
7012 drm_info(display->drm,
7013 "[ENCODER:%d:%s] unusable PPS, disabling eDP\n",
7014 encoder->base.base.id, encoder->base.name);
7015 /*
7016 * The BIOS may have still enabled VDD on the PPS even
7017 * though it's unusable. Make sure we turn it back off
7018 * and to release the power domain references/etc.
7019 */
7020 goto out_vdd_off;
7021 }
7022
7023 /*
7024 * Enable HPD sense for live status check.
7025 * intel_hpd_irq_setup() will turn it off again
7026 * if it's no longer needed later.
7027 *
7028 * The DPCD probe below will make sure VDD is on.
7029 */
7030 intel_hpd_enable_detection(encoder);
7031
7032 intel_alpm_init(intel_dp);
7033
7034 /* Cache DPCD and EDID for edp. */
7035 has_dpcd = intel_edp_init_dpcd(intel_dp, connector);
7036
7037 if (!has_dpcd) {
7038 /* if this fails, presume the device is a ghost */
7039 drm_info(display->drm,
7040 "[ENCODER:%d:%s] failed to retrieve link info, disabling eDP\n",
7041 encoder->base.base.id, encoder->base.name);
7042 goto out_vdd_off;
7043 }
7044
7045 /*
7046 * VBT and straps are liars. Also check HPD as that seems
7047 * to be the most reliable piece of information available.
7048 *
7049 * ... expect on devices that forgot to hook HPD up for eDP
7050 * (eg. Acer Chromebook C710), so we'll check it only if multiple
7051 * ports are attempting to use the same AUX CH, according to VBT.
7052 */
7053 if (intel_bios_dp_has_shared_aux_ch(encoder->devdata)) {
7054 /*
7055 * If this fails, presume the DPCD answer came
7056 * from some other port using the same AUX CH.
7057 *
7058 * FIXME maybe cleaner to check this before the
7059 * DPCD read? Would need sort out the VDD handling...
7060 */
7061 if (!intel_digital_port_connected(encoder)) {
7062 drm_info(display->drm,
7063 "[ENCODER:%d:%s] HPD is down, disabling eDP\n",
7064 encoder->base.base.id, encoder->base.name);
7065 goto out_vdd_off;
7066 }
7067
7068 /*
7069 * Unfortunately even the HPD based detection fails on
7070 * eg. Asus B360M-A (CFL+CNP), so as a last resort fall
7071 * back to checking for a VGA branch device. Only do this
7072 * on known affected platforms to minimize false positives.
7073 */
7074 if (DISPLAY_VER(display) == 9 && drm_dp_is_branch(intel_dp->dpcd) &&
7075 (intel_dp->dpcd[DP_DOWNSTREAMPORT_PRESENT] & DP_DWN_STRM_PORT_TYPE_MASK) ==
7076 DP_DWN_STRM_PORT_TYPE_ANALOG) {
7077 drm_info(display->drm,
7078 "[ENCODER:%d:%s] VGA converter detected, disabling eDP\n",
7079 encoder->base.base.id, encoder->base.name);
7080 goto out_vdd_off;
7081 }
7082 }
7083
7084 mutex_lock(&display->drm->mode_config.mutex);
7085 drm_edid = drm_edid_read_ddc(&connector->base, connector->base.ddc);
7086 if (!drm_edid) {
7087 /* Fallback to EDID from ACPI OpRegion, if any */
7088 drm_edid = intel_opregion_get_edid(connector);
7089 if (drm_edid)
7090 drm_dbg_kms(display->drm,
7091 "[CONNECTOR:%d:%s] Using OpRegion EDID\n",
7092 connector->base.base.id, connector->base.name);
7093 }
7094 if (drm_edid) {
7095 if (drm_edid_connector_update(&connector->base, drm_edid) ||
7096 !drm_edid_connector_add_modes(&connector->base)) {
7097 drm_edid_connector_update(&connector->base, NULL);
7098 drm_edid_free(drm_edid);
7099 drm_edid = ERR_PTR(-EINVAL);
7100 }
7101 } else {
7102 drm_edid = ERR_PTR(-ENOENT);
7103 }
7104
7105 intel_bios_init_panel_late(display, &connector->panel, encoder->devdata,
7106 IS_ERR(drm_edid) ? NULL : drm_edid);
7107
7108 intel_panel_add_edid_fixed_modes(connector, true);
7109
7110 /* MSO requires information from the EDID */
7111 intel_edp_mso_init(intel_dp);
7112
7113 /* multiply the mode clock and horizontal timings for MSO */
7114 list_for_each_entry(fixed_mode, &connector->panel.fixed_modes, head)
7115 intel_edp_mso_mode_fixup(connector, fixed_mode);
7116
7117 /* fallback to VBT if available for eDP */
7118 if (!intel_panel_preferred_fixed_mode(connector))
7119 intel_panel_add_vbt_lfp_fixed_mode(connector);
7120
7121 mutex_unlock(&display->drm->mode_config.mutex);
7122
7123 if (!intel_panel_preferred_fixed_mode(connector)) {
7124 drm_info(display->drm,
7125 "[ENCODER:%d:%s] failed to find fixed mode for the panel, disabling eDP\n",
7126 encoder->base.base.id, encoder->base.name);
7127 goto out_vdd_off;
7128 }
7129
7130 intel_panel_init(connector, drm_edid);
7131
7132 intel_edp_backlight_setup(intel_dp, connector);
7133
7134 intel_edp_add_properties(intel_dp);
7135
7136 intel_pps_init_late(intel_dp);
7137
7138 return true;
7139
7140 out_vdd_off:
7141 intel_pps_vdd_off_sync(intel_dp);
7142 intel_bios_fini_panel(&connector->panel);
7143
7144 return false;
7145 }
7146
7147 bool
intel_dp_init_connector(struct intel_digital_port * dig_port,struct intel_connector * connector)7148 intel_dp_init_connector(struct intel_digital_port *dig_port,
7149 struct intel_connector *connector)
7150 {
7151 struct intel_display *display = to_intel_display(dig_port);
7152 struct intel_dp *intel_dp = &dig_port->dp;
7153 struct intel_encoder *encoder = &dig_port->base;
7154 struct drm_device *dev = encoder->base.dev;
7155 enum port port = encoder->port;
7156 int type;
7157
7158 if (drm_WARN(dev, dig_port->max_lanes < 1,
7159 "Not enough lanes (%d) for DP on [ENCODER:%d:%s]\n",
7160 dig_port->max_lanes, encoder->base.base.id,
7161 encoder->base.name))
7162 return false;
7163
7164 intel_dp->reset_link_params = true;
7165
7166 /* Preserve the current hw state. */
7167 intel_dp->DP = intel_de_read(display, intel_dp->output_reg);
7168 intel_dp->attached_connector = connector;
7169
7170 if (_intel_dp_is_port_edp(display, encoder->devdata, port)) {
7171 /*
7172 * Currently we don't support eDP on TypeC ports for DISPLAY_VER < 30,
7173 * although in theory it could work on TypeC legacy ports.
7174 */
7175 drm_WARN_ON(dev, intel_encoder_is_tc(encoder) &&
7176 DISPLAY_VER(display) < 30);
7177 type = DRM_MODE_CONNECTOR_eDP;
7178 encoder->type = INTEL_OUTPUT_EDP;
7179
7180 /* eDP only on port B and/or C on vlv/chv */
7181 if (drm_WARN_ON(dev, (display->platform.valleyview ||
7182 display->platform.cherryview) &&
7183 port != PORT_B && port != PORT_C))
7184 return false;
7185 } else {
7186 type = DRM_MODE_CONNECTOR_DisplayPort;
7187 }
7188
7189 intel_dp_set_default_sink_rates(intel_dp);
7190 intel_dp_set_default_max_sink_lane_count(intel_dp);
7191
7192 if (display->platform.valleyview || display->platform.cherryview)
7193 vlv_pps_pipe_init(intel_dp);
7194
7195 intel_dp_aux_init(intel_dp);
7196 connector->dp.dsc_decompression_aux = &intel_dp->aux;
7197
7198 drm_dbg_kms(display->drm,
7199 "Adding %s connector on [ENCODER:%d:%s]\n",
7200 type == DRM_MODE_CONNECTOR_eDP ? "eDP" : "DP",
7201 encoder->base.base.id, encoder->base.name);
7202
7203 drm_connector_init_with_ddc(dev, &connector->base, &intel_dp_connector_funcs,
7204 type, &intel_dp->aux.ddc);
7205 drm_connector_helper_add(&connector->base, &intel_dp_connector_helper_funcs);
7206
7207 if (!HAS_GMCH(display) && DISPLAY_VER(display) < 12)
7208 connector->base.interlace_allowed = true;
7209
7210 if (type != DRM_MODE_CONNECTOR_eDP)
7211 connector->polled = DRM_CONNECTOR_POLL_HPD;
7212 connector->base.polled = connector->polled;
7213
7214 intel_connector_attach_encoder(connector, encoder);
7215
7216 if (HAS_DDI(display))
7217 connector->get_hw_state = intel_ddi_connector_get_hw_state;
7218 else
7219 connector->get_hw_state = intel_connector_get_hw_state;
7220 connector->sync_state = intel_dp_connector_sync_state;
7221
7222 if (!intel_edp_init_connector(intel_dp, connector)) {
7223 intel_dp_aux_fini(intel_dp);
7224 goto fail;
7225 }
7226
7227 intel_dp_set_source_rates(intel_dp);
7228 intel_dp_set_common_link_params(intel_dp);
7229 intel_dp_reset_link_params(intel_dp);
7230
7231 /* init MST on ports that can support it */
7232 intel_dp_mst_encoder_init(dig_port, connector->base.base.id);
7233
7234 intel_dp_add_properties(intel_dp, &connector->base);
7235
7236 if (is_hdcp_supported(display, port) && !intel_dp_is_edp(intel_dp)) {
7237 int ret = intel_dp_hdcp_init(dig_port, connector);
7238 if (ret)
7239 drm_dbg_kms(display->drm,
7240 "HDCP init failed, skipping.\n");
7241 }
7242
7243 intel_dp->frl.is_trained = false;
7244 intel_dp->frl.trained_rate_gbps = 0;
7245
7246 intel_psr_init(intel_dp);
7247
7248 return true;
7249
7250 fail:
7251 intel_display_power_flush_work(display);
7252 drm_connector_cleanup(&connector->base);
7253
7254 return false;
7255 }
7256
intel_dp_cleanup_connector(struct intel_digital_port * dig_port,struct intel_connector * connector)7257 void intel_dp_cleanup_connector(struct intel_digital_port *dig_port,
7258 struct intel_connector *connector)
7259 {
7260 struct intel_display *display = to_intel_display(connector);
7261 struct intel_dp *intel_dp = &dig_port->dp;
7262
7263 intel_display_power_flush_work(display);
7264
7265 intel_dp_mst_encoder_cleanup(dig_port);
7266 intel_dp_aux_fini(intel_dp);
7267 drm_connector_cleanup(&connector->base);
7268 }
7269
intel_dp_mst_suspend(struct intel_display * display)7270 void intel_dp_mst_suspend(struct intel_display *display)
7271 {
7272 struct intel_encoder *encoder;
7273
7274 if (!HAS_DISPLAY(display))
7275 return;
7276
7277 for_each_intel_encoder(display->drm, encoder) {
7278 struct intel_dp *intel_dp;
7279
7280 if (encoder->type != INTEL_OUTPUT_DDI)
7281 continue;
7282
7283 intel_dp = enc_to_intel_dp(encoder);
7284
7285 if (!intel_dp_mst_source_support(intel_dp))
7286 continue;
7287
7288 if (intel_dp->is_mst)
7289 drm_dp_mst_topology_mgr_suspend(&intel_dp->mst.mgr);
7290 }
7291 }
7292
intel_dp_mst_resume(struct intel_display * display)7293 void intel_dp_mst_resume(struct intel_display *display)
7294 {
7295 struct intel_encoder *encoder;
7296
7297 if (!HAS_DISPLAY(display))
7298 return;
7299
7300 for_each_intel_encoder(display->drm, encoder) {
7301 struct intel_dp *intel_dp;
7302 int ret;
7303
7304 if (encoder->type != INTEL_OUTPUT_DDI)
7305 continue;
7306
7307 intel_dp = enc_to_intel_dp(encoder);
7308
7309 if (!intel_dp_mst_source_support(intel_dp))
7310 continue;
7311
7312 ret = drm_dp_mst_topology_mgr_resume(&intel_dp->mst.mgr, true);
7313 if (ret) {
7314 intel_dp->is_mst = false;
7315 drm_dp_mst_topology_mgr_set_mst(&intel_dp->mst.mgr, false);
7316 }
7317 }
7318 }
7319
7320 static
intel_dp_sdp_compute_config_late(struct intel_crtc_state * crtc_state)7321 int intel_dp_sdp_compute_config_late(struct intel_crtc_state *crtc_state)
7322 {
7323 struct intel_display *display = to_intel_display(crtc_state);
7324 int guardband = intel_crtc_vblank_length(crtc_state);
7325 int min_sdp_guardband = intel_dp_sdp_min_guardband(crtc_state, false);
7326
7327 if (guardband < min_sdp_guardband) {
7328 drm_dbg_kms(display->drm, "guardband %d < min sdp guardband %d\n",
7329 guardband, min_sdp_guardband);
7330 return -EINVAL;
7331 }
7332
7333 return 0;
7334 }
7335
intel_dp_compute_config_late(struct intel_encoder * encoder,struct intel_crtc_state * crtc_state,struct drm_connector_state * conn_state)7336 int intel_dp_compute_config_late(struct intel_encoder *encoder,
7337 struct intel_crtc_state *crtc_state,
7338 struct drm_connector_state *conn_state)
7339 {
7340 struct intel_dp *intel_dp = enc_to_intel_dp(encoder);
7341 int ret;
7342
7343 intel_psr_compute_config_late(intel_dp, crtc_state);
7344
7345 ret = intel_dp_sdp_compute_config_late(crtc_state);
7346 if (ret)
7347 return ret;
7348
7349 intel_alpm_lobf_compute_config_late(intel_dp, crtc_state);
7350
7351 return 0;
7352 }
7353
7354 static
intel_dp_get_lines_for_sdp(const struct intel_crtc_state * crtc_state,u32 type)7355 int intel_dp_get_lines_for_sdp(const struct intel_crtc_state *crtc_state, u32 type)
7356 {
7357 switch (type) {
7358 case DP_SDP_VSC_EXT_VESA:
7359 case DP_SDP_VSC_EXT_CEA:
7360 return 10;
7361 case HDMI_PACKET_TYPE_GAMUT_METADATA:
7362 return 8;
7363 case DP_SDP_PPS:
7364 return 7;
7365 case DP_SDP_ADAPTIVE_SYNC:
7366 return crtc_state->vrr.vsync_start + 1;
7367 default:
7368 break;
7369 }
7370
7371 return 0;
7372 }
7373
intel_dp_sdp_min_guardband(const struct intel_crtc_state * crtc_state,bool assume_all_enabled)7374 int intel_dp_sdp_min_guardband(const struct intel_crtc_state *crtc_state,
7375 bool assume_all_enabled)
7376 {
7377 int sdp_guardband = 0;
7378
7379 if (assume_all_enabled ||
7380 crtc_state->infoframes.enable &
7381 intel_hdmi_infoframe_enable(HDMI_PACKET_TYPE_GAMUT_METADATA))
7382 sdp_guardband = max(sdp_guardband,
7383 intel_dp_get_lines_for_sdp(crtc_state,
7384 HDMI_PACKET_TYPE_GAMUT_METADATA));
7385
7386 if (assume_all_enabled ||
7387 crtc_state->dsc.compression_enable)
7388 sdp_guardband = max(sdp_guardband,
7389 intel_dp_get_lines_for_sdp(crtc_state, DP_SDP_PPS));
7390
7391 if (crtc_state->infoframes.enable &
7392 intel_hdmi_infoframe_enable(DP_SDP_ADAPTIVE_SYNC))
7393 sdp_guardband = max(sdp_guardband,
7394 intel_dp_get_lines_for_sdp(crtc_state, DP_SDP_ADAPTIVE_SYNC));
7395
7396 return sdp_guardband;
7397 }
7398
intel_dp_joiner_candidate_valid(struct intel_connector * connector,int hdisplay,int num_joined_pipes)7399 bool intel_dp_joiner_candidate_valid(struct intel_connector *connector,
7400 int hdisplay,
7401 int num_joined_pipes)
7402 {
7403 struct intel_display *display = to_intel_display(connector);
7404 struct intel_dp *intel_dp = intel_attached_dp(connector);
7405
7406 if (!intel_dp_can_join(intel_dp, num_joined_pipes))
7407 return false;
7408
7409 if (hdisplay > num_joined_pipes * intel_dp_max_hdisplay_per_pipe(display))
7410 return false;
7411
7412 if (connector->force_joined_pipes && connector->force_joined_pipes != num_joined_pipes)
7413 return false;
7414
7415 return true;
7416 }
7417
intel_dp_as_sdp_transmission_time(void)7418 u8 intel_dp_as_sdp_transmission_time(void)
7419 {
7420 /*
7421 * DP allows AS SDP position to move during PR active in some cases, but
7422 * software-controlled refresh rate changes with DC6v / ALPM require the
7423 * AS SDP to remain at T1. Use T1 unconditionally for now.
7424 */
7425
7426 return DP_PR_AS_SDP_SETUP_TIME_T1;
7427 }
7428
intel_dp_link_init(struct intel_dp * intel_dp)7429 int intel_dp_link_init(struct intel_dp *intel_dp)
7430 {
7431 intel_dp->link.training = intel_dp_link_training_init(intel_dp);
7432 if (!intel_dp->link.training)
7433 return -ENOMEM;
7434
7435 intel_dp->link.caps = intel_dp_link_caps_init(intel_dp);
7436 if (!intel_dp->link.caps) {
7437 intel_dp_link_training_cleanup(intel_dp->link.training);
7438
7439 return -ENOMEM;
7440 }
7441
7442 return 0;
7443 }
7444
intel_dp_link_cleanup(struct intel_dp * intel_dp)7445 void intel_dp_link_cleanup(struct intel_dp *intel_dp)
7446 {
7447 intel_dp_link_caps_cleanup(intel_dp->link.caps);
7448 intel_dp_link_training_cleanup(intel_dp->link.training);
7449 }
7450